Andrei Sokolov
Biographic Data
| ID | 7996492 |
|---|---|
| NAME | Andrei Sokolov |
| GIVEN NAMES | Andrei |
| FAMILY NAME | Sokolov |
| SIGNATURE | SOKOLOV A |
| AFFILIATIONS | Massachusetts Institute of Technology |
| ORCID | 0000-0003-2406-3228 |
| VERIFIED | Yes |
| TOTAL WORKS | 7 |
| TOTAL CITATIONS | 4 |
| AUTHOR COUNT | 7 |
| EDITOR COUNT | 0 |
| FIRST PUBLICATION YEAR | 2001 |
| LATEST PUBLICATION YEAR | 2016 |
| H-INDEX | 1 |
Protected areas’ role in climate-change mitigation
Potential influence of climate-induced vegetation shifts on future land use and associated land carbon fluxes in Northern Eurasia
© The Author(s), 2014. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Environmental Research Letters 9 (2014): 035004, doi:10.1088/1748-9326/9/3/035004
Permafrost degradation and methane: Low risk of biogeochemical climate-warming feedback
© The Author(s), 2013. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Environmental Research Letters 8 (2013): 035014, doi:10.1088/1748-9326/8/3/035014
Probabilistic projections of 21st century climate change over Northern Eurasia
We present probabilistic projections of 21st century climate change over Northern Eurasia using the Massachusetts Institute of Technology (MIT) Integrated Global System Model (IGSM), an integrated assessment model that couples an Earth system model of intermediate complexity with a two-dimensional zonal-mean atmosphere to a human activity model. Regional climate change is obtained by two downscaling methods: a dynamical downscaling, where the IGS…
Pan-Arctic land–atmospheric fluxes of methane and carbon dioxide in response to climate change over the 21st century
Future changes of pan-Arctic land–atmospheric methane (CH _4 ) and carbon dioxide (CO _2 ) depend on how terrestrial ecosystems respond to warming climate. Here, we used a coupled hydrology–biogeochemistry model to make our estimates of these carbon exchanges with two contrasting climate change scenarios (no-policy versus policy) over the 21st century, by considering (1) a detailed water table dynamics and (2) a permafrost-thawing effect. Our sim…
Rising methane emissions in response to climate change in Northern Eurasia during the 21st century
We used a biogeochemistry model, the Terrestrial Ecosystem Model (TEM), to examine the methane (CH4) exchanges between terrestrial ecosystems and the atmosphere in Northern Eurasia from 1971 to 2100. Multiple model simulations using various wetland extent datasets and climate change scenarios were conducted to assess the uncertainty of CH4 fluxes, including emissions and consumption. On the basis of these simulations we estimate the current net e…
Stalinism as a Way of Life
Stalinism as a Way of Life
Rising methane emissions in response to climate change in Northern Eurasia during the 21st century
We used a biogeochemistry model, the Terrestrial Ecosystem Model (TEM), to examine the methane (CH4) exchanges between terrestrial ecosystems and the atmosphere in Northern Eurasia from 1971 to 2100. Multiple model simulations using various wetland extent datasets and climate change scenarios were conducted to assess the uncertainty of CH4 fluxes, including emissions and consumption. On the basis of these simulations we estimate the current net e…
Permafrost degradation and methane: Low risk of biogeochemical climate-warming feedback
© The Author(s), 2013. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Environmental Research Letters 8 (2013): 035014, doi:10.1088/1748-9326/8/3/035014
Probabilistic projections of 21st century climate change over Northern Eurasia
We present probabilistic projections of 21st century climate change over Northern Eurasia using the Massachusetts Institute of Technology (MIT) Integrated Global System Model (IGSM), an integrated assessment model that couples an Earth system model of intermediate complexity with a two-dimensional zonal-mean atmosphere to a human activity model. Regional climate change is obtained by two downscaling methods: a dynamical downscaling, where the IGS…
Pan-Arctic land–atmospheric fluxes of methane and carbon dioxide in response to climate change over the 21st century
Future changes of pan-Arctic land–atmospheric methane (CH _4 ) and carbon dioxide (CO _2 ) depend on how terrestrial ecosystems respond to warming climate. Here, we used a coupled hydrology–biogeochemistry model to make our estimates of these carbon exchanges with two contrasting climate change scenarios (no-policy versus policy) over the 21st century, by considering (1) a detailed water table dynamics and (2) a permafrost-thawing effect. Our sim…
Potential influence of climate-induced vegetation shifts on future land use and associated land carbon fluxes in Northern Eurasia
© The Author(s), 2014. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Environmental Research Letters 9 (2014): 035004, doi:10.1088/1748-9326/9/3/035004
Protected areas’ role in climate-change mitigation
Climate change (6 works) · Environmental Science (6 works) · Climate change and permafrost (5 works) · Geology (5 works) · Ecology (4 works) · Geography (4 works) · Atmospheric and Environmental Gas Dynamics (3 works) · Atmospheric sciences (3 works) · Climate model (3 works) · Climatology (3 works)