Microbial models with data‐driven parameters predict stronger soil carbon responses to climate change
暂无分享,去创建一个
[1] W. Horwath,et al. Decomposition of rice straw and microbial carbon use efficiency under different soil temperatures and moistures , 2000 .
[2] Evaluating the carbon cycle of a coupled atmosphere‐biosphere model , 2003 .
[3] J. Randerson,et al. Atmospheric Carbon Dioxide Variability in the Community Earth System Model: Evaluation and Transient Dynamics during the Twentieth and Twenty-First Centuries , 2013 .
[4] Ashish Sharma,et al. A comparative study of Markov chain Monte Carlo methods for conceptual rainfall‐runoff modeling , 2004 .
[5] L. White,et al. Probabilistic inversion of a terrestrial ecosystem model: Analysis of uncertainty in parameter estimation and model prediction , 2006 .
[6] William R. Wieder,et al. Global soil carbon projections are improved by modelling microbial processes , 2013 .
[7] Shilong Piao,et al. Temperature sensitivity of soil respiration in different ecosystems in China , 2009 .
[8] Ram C. Dalal,et al. Relationships of soil respiration to microbial biomass, substrate availability and clay content , 2003 .
[9] Joshua P. Schimel,et al. The implications of exoenzyme activity on microbial carbon and nitrogen limitation in soil: a theoretical model , 2003 .
[10] W. Post,et al. Development of microbial-enzyme-mediated decomposition model parameters through steady-state and dynamic analyses. , 2013, Ecological applications : a publication of the Ecological Society of America.
[11] F. Chapin,et al. Substrate limitations to microbial activity in taiga forest floors , 2001 .
[12] E. Boyle,et al. The global carbon cycle: a test of our knowledge of earth as a system. , 2000, Science.
[13] Karl E. Taylor,et al. An overview of CMIP5 and the experiment design , 2012 .
[14] J. Randerson,et al. Changes in soil organic carbon storage predicted by Earth system models during the 21st century , 2013 .
[15] H. Tian,et al. Does a General Temperature-Dependent Q10 Model of Soil Respiration Exist at Biome and Global Scale? , 2005 .
[16] C. Airoldi,et al. Microbial enzymatic activity and thermal effect in a tropical soil treated with organic materials , 2008 .
[17] John Moncrieff,et al. The dependence of soil CO2 efflux on temperature , 2001 .
[18] Josep G. Canadell,et al. Sustainability of terrestrial carbon sequestration: A case study in Duke Forest with inversion approach , 2003 .
[19] H. Haario,et al. An adaptive Metropolis algorithm , 2001 .
[20] R. Sinsabaugh,et al. Ecoenzymatic stoichiometry of microbial nutrient acquisition in tropical soils , 2013, Biogeochemistry.
[21] Mark A. Bradford,et al. Soil-carbon response to warming dependent on microbial physiology , 2010 .
[22] Steven D. Allison,et al. The Michaelis–Menten kinetics of soil extracellular enzymes in response to temperature: a cross‐latitudinal study , 2012 .
[23] Bruce A. Hungate,et al. Altered soil microbial community at elevated CO2 leads to loss of soil carbon , 2007, Proceedings of the National Academy of Sciences.
[24] Yiqi Luo,et al. Evaluation and improvement of a global land model against soil carbon data using a Bayesian Markov chain Monte Carlo method , 2014 .
[25] Yiqi Luo,et al. Acclimatization of soil respiration to warming in a tall grass prairie , 2001, Nature.
[26] Pete Smith,et al. Is resistant soil organic matter more sensitive to temperature than the labile organic matter , 2005 .
[27] Keith W. Oleson,et al. Simulation of Global Land Surface Conditions from 1948 to 2004. Part I: Forcing Data and Evaluations , 2006 .
[28] T. Chase,et al. Representing a new MODIS consistent land surface in the Community Land Model (CLM 3.0) , 2007 .
[29] Jürgen K. Friedel,et al. Review of mechanisms and quantification of priming effects. , 2000 .
[30] B. R. Taylor,et al. Nitrogen and Lignin Content as Predictors of Litter Decay Rates: A Microcosm Test , 1989 .
[31] Peter Franks,et al. Planktonic ecosystem models: perplexing parameterizations and a failure to fail , 2009 .
[32] Stefano Manzoni,et al. Carbon use efficiency of microbial communities: stoichiometry, methodology and modelling. , 2013, Ecology letters.
[33] Robert J. Scholes,et al. Observations and modeling of biomass and soil organic matter dynamics for the grassland biome worldwide , 1993 .
[34] Takeshi Ise,et al. The global-scale temperature and moisture dependencies of soil organic carbon decomposition: an analysis using a mechanistic decomposition model , 2006 .
[35] Peter E. Thornton,et al. Technical Description of the Community Land Model (CLM) , 2004 .
[36] Peijun Shi,et al. Nonsteady state carbon sequestration in forest ecosystems of China estimated by data assimilation , 2013 .
[37] Peter E. Thornton,et al. Improvements to the Community Land Model and their impact on the hydrological cycle , 2008 .
[38] Matthew J. Smith,et al. Oscillatory behavior of two nonlinear microbial models of soil carbon decomposition , 2013 .
[39] Paul Dijkstra,et al. Accelerated microbial turnover but constant growth efficiency with warming in soil , 2014 .
[40] Pete Smith,et al. Similar response of labile and resistant soil organic matter pools to changes in temperature , 2005, Nature.
[41] A. Heinemeyer,et al. Effects of three years of soil warming and shading on the rate of soil respiration: substrate availability and not thermal acclimation mediates observed response , 2007 .
[42] W. Silver,et al. Controls on long‐term root and leaf litter decomposition in neotropical forests , 2008 .
[43] Maosheng Zhao,et al. Drought-Induced Reduction in Global Terrestrial Net Primary Production from 2000 Through 2009 , 2010, Science.
[44] J. Randerson,et al. Causes of variation in soil carbon simulations from CMIP5 Earth system models and comparison with observations , 2012 .
[45] Sébastien Barot,et al. Stability of organic carbon in deep soil layers controlled by fresh carbon supply , 2007, Nature.
[46] Drew W. Purves,et al. The climate dependence of the terrestrial carbon cycle, including parameter and structural uncertainties , 2012 .
[47] T. Müller,et al. Soil organic matter turnover as a function of the soil clay content: consequences for model applications , 2004 .
[48] R. B. Jackson,et al. A Large and Persistent Carbon Sink in the World’s Forests , 2011, Science.
[49] D. Rubin,et al. Inference from Iterative Simulation Using Multiple Sequences , 1992 .
[50] M. Sambridge,et al. Monte Carlo analysis of inverse problems , 2002 .
[51] Peter E. Thornton,et al. A global analysis of soil microbial biomass carbon, nitrogen and phosphorus in terrestrial ecosystems , 2013 .
[52] J. Six,et al. The temperature response of soil microbial efficiency and its feedback to climate , 2013 .
[53] Joanna Isobel House,et al. Maximum impacts of future reforestation or deforestation on atmospheric CO2 , 2002 .
[54] D Lloyd,et al. Temperature-compensated oscillations in respiration and cellular protein content in synchronous cultures of Acanthamoeba castellanii. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[55] Y. Svirezhev. Simple Spatially Distributed Model of the Global Carbon Cycle and its Dynamic Properties , 2002 .
[56] R. Conant,et al. Patterns of substrate utilization during long-term incubations at different temperatures , 2008 .
[57] Luc Abbadie,et al. Carbon input to soil may decrease soil carbon content , 2004 .
[58] P. Shi,et al. Global pattern of temperature sensitivity of soil heterotrophic respiration (Q10) and its implications for carbon‐climate feedback , 2009 .
[59] Pete Smith,et al. Carbon sequestration in the agricultural soils of Europe , 2004 .
[60] Michael T. Coe,et al. Testing the performance of a dynamic global ecosystem model: Water balance, carbon balance, and vegetation structure , 2000 .
[61] Jianyang Xia,et al. Evaluation and improvement of a global land model against soil carbon data using a Bayesian Markov chain Monte Carlo method , 2014 .
[62] Matthew J. Smith,et al. Predictability of the terrestrial carbon cycle , 2015, Global change biology.