Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics
Abstract Understanding the influence of environmental factors on soil organic carbon (SOC) is critical for quantifying and reducing the uncertainty in carbon climate feedback projections under changing environmental conditions. We explored the effect of climatic variables, land cover types, topograp...
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doaj-29e3f1fd39394f23a000d3ce2975cb462021-03-21T12:37:41ZengNature Publishing GroupScientific Reports2045-23222021-03-0111111010.1038/s41598-021-85992-yRegional environmental controllers influence continental scale soil carbon stocks and future carbon dynamicsDaniel Ruiz Potma Gonçalves0Umakant Mishra1Skye Wills2Sagar Gautam3Department of Fitotechnics and Plant Health, Universidade Estadual de Ponta GrossaBioscience Division, Sandia National LaboratoryNational Soil Survey Center, USDA- Natural Resource Conservation CenterBioscience Division, Sandia National LaboratoryAbstract Understanding the influence of environmental factors on soil organic carbon (SOC) is critical for quantifying and reducing the uncertainty in carbon climate feedback projections under changing environmental conditions. We explored the effect of climatic variables, land cover types, topographic attributes, soil types and bedrock geology on SOC stocks of top 1 m depth across conterminous United States (US) ecoregions. Using 4559 soil profile observations and high-resolution data of environmental factors, we identified dominant environmental controllers of SOC stocks in 21 US ecoregions using geographically weighted regression. We used projected climatic data of SSP126 and SSP585 scenarios from GFDL-ESM 4 Earth System Model of Coupled Model Intercomparison Project phase 6 to predict SOC stock changes across continental US between 2030 and 2100. Both baseline and predicted changes in SOC stocks were compared with SOC stocks represented in GFDL-ESM4 projections. Among 56 environmental predictors, we found 12 as dominant controllers across all ecoregions. The adjusted geospatial model with the 12 environmental controllers showed an R2 of 0.48 in testing dataset. Higher precipitation and lower temperatures were associated with higher levels of SOC stocks in majority of ecoregions. Changes in land cover types (vegetation properties) was important in drier ecosystem as North American deserts, whereas soil types and topography were more important in American prairies. Wetlands of the Everglades was highly sensitive to projected temperature changes. The SOC stocks did not change under SSP126 until 2100, however SOC stocks decreased up to 21% under SSP585. Our results, based on environmental controllers of SOC stocks, help to predict impacts of changing environmental conditions on SOC stocks more reliably and may reduce uncertainties found in both, geospatial and Earth System Models. In addition, the description of different environmental controllers for US ecoregions can help to describe the scope and importance of global and local models.https://doi.org/10.1038/s41598-021-85992-y |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Daniel Ruiz Potma Gonçalves Umakant Mishra Skye Wills Sagar Gautam |
spellingShingle |
Daniel Ruiz Potma Gonçalves Umakant Mishra Skye Wills Sagar Gautam Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics Scientific Reports |
author_facet |
Daniel Ruiz Potma Gonçalves Umakant Mishra Skye Wills Sagar Gautam |
author_sort |
Daniel Ruiz Potma Gonçalves |
title |
Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics |
title_short |
Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics |
title_full |
Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics |
title_fullStr |
Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics |
title_full_unstemmed |
Regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics |
title_sort |
regional environmental controllers influence continental scale soil carbon stocks and future carbon dynamics |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2021-03-01 |
description |
Abstract Understanding the influence of environmental factors on soil organic carbon (SOC) is critical for quantifying and reducing the uncertainty in carbon climate feedback projections under changing environmental conditions. We explored the effect of climatic variables, land cover types, topographic attributes, soil types and bedrock geology on SOC stocks of top 1 m depth across conterminous United States (US) ecoregions. Using 4559 soil profile observations and high-resolution data of environmental factors, we identified dominant environmental controllers of SOC stocks in 21 US ecoregions using geographically weighted regression. We used projected climatic data of SSP126 and SSP585 scenarios from GFDL-ESM 4 Earth System Model of Coupled Model Intercomparison Project phase 6 to predict SOC stock changes across continental US between 2030 and 2100. Both baseline and predicted changes in SOC stocks were compared with SOC stocks represented in GFDL-ESM4 projections. Among 56 environmental predictors, we found 12 as dominant controllers across all ecoregions. The adjusted geospatial model with the 12 environmental controllers showed an R2 of 0.48 in testing dataset. Higher precipitation and lower temperatures were associated with higher levels of SOC stocks in majority of ecoregions. Changes in land cover types (vegetation properties) was important in drier ecosystem as North American deserts, whereas soil types and topography were more important in American prairies. Wetlands of the Everglades was highly sensitive to projected temperature changes. The SOC stocks did not change under SSP126 until 2100, however SOC stocks decreased up to 21% under SSP585. Our results, based on environmental controllers of SOC stocks, help to predict impacts of changing environmental conditions on SOC stocks more reliably and may reduce uncertainties found in both, geospatial and Earth System Models. In addition, the description of different environmental controllers for US ecoregions can help to describe the scope and importance of global and local models. |
url |
https://doi.org/10.1038/s41598-021-85992-y |
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