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Träfflista för sökning "WFRF:(Peng Changhui) srt2:(2015-2019)"

Search: WFRF:(Peng Changhui) > (2015-2019)

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1.
  • Abbott, Benjamin W., et al. (author)
  • Biomass offsets little or none of permafrost carbon release from soils, streams, and wildfire : an expert assessment
  • 2016
  • In: Environmental Research Letters. - : IOP Publishing. - 1748-9326. ; 11:3
  • Journal article (peer-reviewed)abstract
    • As the permafrost region warms, its large organic carbon pool will be increasingly vulnerable to decomposition, combustion, and hydrologic export. Models predict that some portion of this release will be offset by increased production of Arctic and boreal biomass; however, the lack of robust estimates of net carbon balance increases the risk of further overshooting international emissions targets. Precise empirical or model-based assessments of the critical factors driving carbon balance are unlikely in the near future, so to address this gap, we present estimates from 98 permafrost-region experts of the response of biomass, wildfire, and hydrologic carbon flux to climate change. Results suggest that contrary to model projections, total permafrost-region biomass could decrease due to water stress and disturbance, factors that are not adequately incorporated in current models. Assessments indicate that end-of-the-century organic carbon release from Arctic rivers and collapsing coastlines could increase by 75% while carbon loss via burning could increase four-fold. Experts identified water balance, shifts in vegetation community, and permafrost degradation as the key sources of uncertainty in predicting future system response. In combination with previous findings, results suggest the permafrost region will become a carbon source to the atmosphere by 2100 regardless of warming scenario but that 65%-85% of permafrost carbon release can still be avoided if human emissions are actively reduced.
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2.
  • Luo, Yiqi, et al. (author)
  • Toward more realistic projections of soil carbon dynamics by Earth system models
  • 2016
  • In: Global Biogeochemical Cycles. - 0886-6236. ; 30:1, s. 40-56
  • Journal article (peer-reviewed)abstract
    • Soil carbon (C) is a critical component of Earth system models (ESMs), and its diverse representations are a major source of the large spread across models in the terrestrial C sink from the third to fifth assessment reports of the Intergovernmental Panel on Climate Change (IPCC). Improving soil C projections is of a high priority for Earth system modeling in the future IPCC and other assessments. To achieve this goal, we suggest that (1) model structures should reflect real-world processes, (2) parameters should be calibrated to match model outputs with observations, and (3) external forcing variables should accurately prescribe the environmental conditions that soils experience. First, most soil C cycle models simulate C input from litter production and C release through decomposition. The latter process has traditionally been represented by first-order decay functions, regulated primarily by temperature, moisture, litter quality, and soil texture. While this formulation well captures macroscopic soil organic C (SOC) dynamics, better understanding is needed of their underlying mechanisms as related to microbial processes, depth-dependent environmental controls, and other processes that strongly affect soil C dynamics. Second, incomplete use of observations in model parameterization is a major cause of bias in soil C projections from ESMs. Optimal parameter calibration with both pool- and flux-based data sets through data assimilation is among the highest priorities for near-term research to reduce biases among ESMs. Third, external variables are represented inconsistently among ESMs, leading to differences in modeled soil C dynamics. We recommend the implementation of traceability analyses to identify how external variables and model parameterizations influence SOC dynamics in different ESMs. Overall, projections of the terrestrial C sink can be substantially improved when reliable data sets are available to select the most representative model structure, constrain parameters, and prescribe forcing fields.
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3.
  • Tian, Hanqin, et al. (author)
  • Global soil nitrous oxide emissions since the preindustrial era estimated by an ensemble of terrestrial biosphere models : Magnitude, attribution, and uncertainty
  • 2019
  • In: Global Change Biology. - : Wiley. - 1354-1013 .- 1365-2486. ; 25:2, s. 640-659
  • Journal article (peer-reviewed)abstract
    • Our understanding and quantification of global soil nitrous oxide (N2O) emissions and the underlying processes remain largely uncertain. Here, we assessed the effects of multiple anthropogenic and natural factors, including nitrogen fertilizer (N) application, atmospheric N deposition, manure N application, land cover change, climate change, and rising atmospheric CO2 concentration, on global soil N2O emissions for the period 1861–2016 using a standard simulation protocol with seven process-based terrestrial biosphere models. Results suggest global soil N2O emissions have increased from 6.3 ± 1.1 Tg N2O-N/year in the preindustrial period (the 1860s) to 10.0 ± 2.0 Tg N2O-N/year in the recent decade (2007–2016). Cropland soil emissions increased from 0.3 Tg N2O-N/year to 3.3 Tg N2O-N/year over the same period, accounting for 82% of the total increase. Regionally, China, South Asia, and Southeast Asia underwent rapid increases in cropland N2O emissions since the 1970s. However, US cropland N2O emissions had been relatively flat in magnitude since the 1980s, and EU cropland N2O emissions appear to have decreased by 14%. Soil N2O emissions from predominantly natural ecosystems accounted for 67% of the global soil emissions in the recent decade but showed only a relatively small increase of 0.7 ± 0.5 Tg N2O-N/year (11%) since the 1860s. In the recent decade, N fertilizer application, N deposition, manure N application, and climate change contributed 54%, 26%, 15%, and 24%, respectively, to the total increase. Rising atmospheric CO2 concentration reduced soil N2O emissions by 10% through the enhanced plant N uptake, while land cover change played a minor role. Our estimation here does not account for indirect emissions from soils and the directed emissions from excreta of grazing livestock. To address uncertainties in estimating regional and global soil N2O emissions, this study recommends several critical strategies for improving the process-based simulations.
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4.
  • Wu, Xiuchen, et al. (author)
  • Exposures to temperature beyond threshold disproportionately reduce vegetation growth in the northern hemisphere
  • 2019
  • In: National Science Review. - : Oxford University Press (OUP). - 2095-5138 .- 2053-714X. ; 6:4
  • Journal article (peer-reviewed)abstract
    • In recent decades, terrestrial vegetation in the northern hemisphere (NH) has been exposed to warming and more extremely high temperatures. However, the consequences of these changes for terrestrial vegetation growth remain poorly quantified and understood. By examining a satellite-based vegetation index, tree-ring measurements and land-surface model simulations, we discovered a consistent convex pattern in the responses of vegetation growth to temperature exposure (TE) for forest, shrub and grass in both the temperate (30°−50° N) and boreal (50°−70° N) NH during the period of 1982−2012. The response of vegetation growth to TE for the three vegetation types in both the temperate and boreal NH increased convergently with increasing temperature, until vegetation type-dependent temperature thresholds were reached. A TE beyond these temperature thresholds resulted in disproportionately weak positive or even strong negative responses. Vegetation growth in the boreal NH was more vulnerable to extremely high-temperature events than vegetation growth in the temporal NH. The non-linear responses discovered here provide new insights into the dynamics of northern terrestrial ecosystems in a warmer world.
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  • Result 1-4 of 4
Type of publication
journal article (4)
Type of content
peer-reviewed (4)
Author/Editor
McGuire, A. David (2)
Abbott, Benjamin W. (1)
Jones, Jeremy B. (1)
Schuur, Edward A. G. (1)
Chapin, F. Stuart, I ... (1)
Bowden, William B. (1)
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Bret-Harte, M. Syndo ... (1)
Epstein, Howard E. (1)
Flannigan, Michael D ... (1)
Harms, Tamara K. (1)
Hollingsworth, Teres ... (1)
Mack, Michelle C. (1)
Natali, Susan M. (1)
Rocha, Adrian V. (1)
Tank, Suzanne E. (1)
Turetsky, Merritt R. (1)
Vonk, Jorien E. (1)
Wickland, Kimberly P ... (1)
Aiken, George R. (1)
Alexander, Heather D ... (1)
Amon, Rainer M. W. (1)
Benscoter, Brian W. (1)
Bergeron, Yves (1)
Bishop, Kevin (1)
Blarquez, Olivier (1)
Bond-Lamberty, Ben (1)
Breen, Amy L. (1)
Buffam, Ishi (1)
Cai, Yihua (1)
Carcaillet, Christop ... (1)
Carey, Sean K. (1)
Chen, Jing M. (1)
Chen, Han Y. H. (1)
Christensen, Torben ... (1)
Cooper, Lee W. (1)
Cornelissen, J. Hans ... (1)
de Groot, William J. (1)
DeLuca, Thomas H. (1)
Dorrepaal, Ellen (1)
Fetcher, Ned (1)
Finlay, Jacques C. (1)
Forbes, Bruce C. (1)
French, Nancy H. F. (1)
Gauthier, Sylvie (1)
Girardin, Martin P. (1)
Goetz, Scott J. (1)
Goldammer, Johann G. (1)
Gough, Laura (1)
Grogan, Paul (1)
Guo, Laodong (1)
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University
University of Gothenburg (2)
Lund University (2)
Umeå University (1)
Uppsala University (1)
Stockholm University (1)
Swedish University of Agricultural Sciences (1)
Language
English (4)
Research subject (UKÄ/SCB)
Natural sciences (3)
Agricultural Sciences (1)

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