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A list of all pages that have property "HasTitle" with value "Contribution of permafrost soils to the global carbon budget". Since there have been only a few results, also nearby values are displayed.

Showing below up to 26 results starting with #1.

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List of results

  • Füssel et al., 2003  + (Climate impact response functions as impact tools in the tolerable windows approach)
  • Randall et al., 2007  + (Climate models and their evaluation)
  • Hendriks et al., 2002  + (Climate neutral energy carriers in the regulatory energy tax)
  • Girod et al., 2014d  + (Climate policy through changing consumption choices: Options and obstacles for reducing greenhouse gas emissions)
  • Voldoire et al., 2007  + (Climate simulation of the twenty-first century with interactive land-use changes)
  • Waha et al., 2012  + (Climate-driven simulation of global crop sowing dates)
  • Kroeze et al., 1999  + (Closing the global N2O budget: A retrospective analysis 1500-1994)
  • Van Vuuren and Kram, 2011  + (Comment)
  • Haines-Young and Potschin, 2013  + (Common International Classification of Ecosystems Services (CICES): Consultation on Version 4)
  • Höhne et al., 2006  + (Common but differentiated convergence (CDC): A new conceptual approach to long-term climate policy)
  • Van Sluisveld et al., 2018  + (Comparing future patterns of energy system change in 2 °C scenarios to expert projections)
  • Van Sluisveld et al., 2015  + (Comparing future patterns of energy system change in 2°C scenarios with historically observed rates of change)
  • Van Meijl et al., 2018  + (Comparing impacts of climate change and mitigation on global agriculture by 2050)
  • Molotoks et al., 2020  + (Comparing the impact of future cropland expansion on global biodiversity and carbon storage across models and scenarios)
  • Jewell et al., 2016  + (Comparison and interactions between the long-term pursuit of energy independence and climate policies)
  • Van Vuuren et al., 2009b  + (Comparison of different climate regimes: the impact of broadening participation)
  • De Vries et al., 2011  + (Comparison of land nitrogen budgets for European agriculture by various modeling approaches)
  • Van Vuuren et al., 2009c  + (Comparison of top-down and bottom-up estimates of sectoral and regional greenhouse gas emission reduction potentials)
  • Daioglou et al., 2015  + (Competing uses of biomass for energy and chemicals: Implications for long-term global CO2 mitigation potential)
  • Smith et al., 2010  + (Competition for land)
  • Kreileman and Bouwman, 1994  + (Computing land use emissions of greenhouse gases)
  • Van Vuuren et al., 2008  + (Conditional probabilistic estimates of 21st century greenhouse gas emissions based on the storylines of the IPCC-SRES scenarios)
  • Bouwman, 1990a  + (Conference on soils and the greenhouse effect. organized by the International Soil Reference and Information Centre on behalf of the Netherlands' Ministry of Housing, Physical Planning and Environment, Wageningen, the Netherlands, 14-18 August 1989)
  • Bouwman et al., 2010  + (Consequences of the cultivation of energy crops for the global nitrogen cycle)
  • Smeets et al., 2009  + (Contribution of N2O to the greenhouse gas balance of first-generation biofuels (Global Change Biology vol. 15 (1)))
  • Den Elzen et al., 2016  + (Contribution of the G20 economies to the global impact of the Paris agreement climate proposals)
  • Van Ruijven et al. erratum, 2017  + (Corrigendum to “Long-term model-based projections of energy use and CO<sub>2</sub> emissions from the global steel and cement industries”)
  • Amann et al., 2011  + (Cost-effective control of air quality and greenhouse gases in Europe: Modeling and policy applications)
  • Admiraal et al., 2016  + (Costs and benefits of differences in the timing of greenhouse gas emission reductions)
  • Hof et al., 2014b  + (Costs, benefits and interlinkages between adaptation and mitigation)
  • Den Elzen et al., 2013c  + (Countries' contributions to climate change: Effect of accounting for all greenhouse gases, recent trends, basic needs and technological progress)
  • Bronstert et al., 2005  + (Coupled models for the hydrological cycle: Integrating atmosphere, biosphere, and pedosphere)
  • Beusen et al., 2015  + (Coupling global models for hydrology and nutrient loading to simulate nitrogen and phosphorus retention in surface water - Description of IMAGE-GNM and analysis of performance)
  • Denman et al., 2007  + (Couplings Between Changes in the Climate System and Biogeochemistry.)
  • Van Minnen et al., 2002  + (Critical climate change as an approach to assess climate change impacts in Europe: Development and application)
  • Sattari et al., 2014a  + (Crop yield response to soil fertility and N, P, K inputs in different environments: Testing and improving the QUEFTS model)
  • Alkemade et al., 2006  + (Cross-roads of planet earth's life. Exploring means to meet the 2010-biodiversity target)
  • Prestele et al., 2017  + (Current challenges of implementing anthropogenic land-use and land-cover change in models contributing to climate change assessments)
  • Den Elzen et al., 2010a  + (Dealing with surplus emissions in the climate negotiations after Copenhagen: What are the options for compromise?)
  • Ueckerdt et al., 2016  + (Decarbonizing global power supply under region-specific consideration of challenges and options of integrating variable renewables in the REMIND model)
  • Edelenbosch et al., 2017b  + (Decomposing passenger transport futures: Comparing results of global integrated assessment models)
  • Deetman et al., 2015b  + (Deep CO2 emission reductions in a global bottom-up model approach)
  • Deetman et al., 2013  + (Deep greenhouse gas emission reductions in Europe: Exploring different options)
  • Van Minnen et al., 2000  + (Defining the importance of including transient ecosystem responses to simulate C-cycle dynamics in a global change model)
  • Eitelberg et al., 2016  + (Demand for biodiversity protection and carbon storage as drivers of global land change scenarios)
  • Seitzinger et al., 2006  + (Denitrification across landscapes and waterscapes: A synthesis)
  • Hofstra and Bouwman, 2005  + (Denitrification in agricultural soils: Summarizing published data and estimating global annual rates)
  • Van Minnen et al., 2000b  + (Deriving and applying response surface diagrams for evaluating climate change impacts on crop production)
  • Leemans, 1995  + (Determining the global significance of local and regional mitigation strategies: Setting the scene with global integrated assessment models)
  • Leemans and Van Den Born, 1994  + (Determining the potential distribution of vegetation, crops and agricultural productivity)