Simulating climate change effects on soil carbon dynamics in a soybean - maize ecosystem: Using improved CO 2 emission and transport models

被引:0
|
作者
Sun, Wenguang [1 ,2 ]
Fleisher, David [1 ]
Timlin, Dennis [1 ]
Ray, Chittaranjan [2 ]
Wang, Zhuangji [1 ]
Beegum, Sahila [1 ,2 ]
Reddy, Vangimalla [1 ]
机构
[1] USDA ARS, Adapt Cropping Syst Lab, Beltsville, MD 20705 USA
[2] Univ Nebraska Lincoln, Nebraska Water Ctr, Lincoln, NE 68588 USA
基金
美国农业部;
关键词
Process-based models; Soil organic carbon (SOC); Soil respiration; Climate change; ELEVATED ATMOSPHERIC CO2; WATER-USE EFFICIENCY; RESPIRATION; RESPONSES; TEMPERATURE; BIOMASS; LOSSES; GROWTH; PHOTOSYNTHESIS; SEQUESTRATION;
D O I
10.1016/j.eja.2024.127226
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Climate change has been reported to significantly alter the amount of carbon being stored in the soil, but it remains unclear how accurately the effect of high temperatures and elevated CO 2 on soil organic carbon (SOC) dynamics can be predicted. We used process-based crop models, GLYCIM and MAIZSIM, to evaluate the effects of climatic changes on SOC accumulation in a maize-soybean cropping system. Models were initially improved with methods to account for tillage, surface residue decomposition, and soil CO 2 respiration. Data from a 3-year FACE experiment from Illinois, USA were used for calibration and validation. Model performance was then evaluated against observed crop yield and SOC in this long-term cropping system for 1900 -2020. Model predictions accurately matched soil CO 2 flux, respiration associated with plant roots and rhizosphere (R root ), soil heterotrophs (R soi ), whole soil (R tot ), soil water content, and soil temperature, with indices of agreement (IA) ranging from 0.77 to 0.99 except for R root and soil water content. Our model projections, using an ensemble of five GCMs from the latest CMIP6 project, suggested that future warming temperatures would cause a long-term decline in SOC by the end of the 21st century, with losses of 6.0 % and 14.6 % under SSP245 and SSP585 scenarios without considering elevated CO 2 , respectively. However, incorporating elevated CO 2 levels in simulations increased SOC content by 5.0 -6.2 %. This study highlights the importance of linking controlled experiments, long-term field observations, and future climate projections with process-based crop models in order to predict SOC sequestration assessment and evaluate impacts associated with long-term cropping systems.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Simulating Soil Organic Carbon Dynamics under Climate Change Scenarios in an Arid Ecosystem
    Derakhshan, Farhad
    Abdi, Nourollah
    Toranjzar, Hamid
    Ahmadi, Abbas
    POLISH JOURNAL OF ENVIRONMENTAL STUDIES, 2021, 30 (03): : 2063 - 2072
  • [2] Simulating the effects of climate change and climate variability on carbon dynamics in Arctic tundra
    Stieglitz, M
    Giblin, A
    Hobbie, J
    Williams, M
    Kling, G
    GLOBAL BIOGEOCHEMICAL CYCLES, 2000, 14 (04) : 1123 - 1136
  • [3] Simulating effects of climate change on boreal ecosystem carbon pools in central Canada
    Price, DT
    Peng, CH
    Apps, MJ
    Halliwell, DH
    JOURNAL OF BIOGEOGRAPHY, 1999, 26 (06) : 1237 - 1248
  • [5] Simulating climate change impact on soil carbon sequestration in agro-ecosystem of mid-Himalayan landscape using CENTURY model
    Surya Gupta
    Suresh Kumar
    Environmental Earth Sciences, 2017, 76
  • [6] Simulating global soil-CO2 flux and its response to climate change
    Peng, Chang-hui
    Apps, Michael J.
    Journal of Environmental Sciences (China) English Ed, 2000, 12 (03): : 257 - 265
  • [7] Simulating global soil-CO2 flux and its response to climate change
    PENG Chang\|hui 1*
    2 Morthern Forestry Center
    Journal of Environmental Sciences, 2000, (03) : 257 - 265
  • [8] Dynamics of Soil Organic Carbon Under Uncertain Climate Change and Elevated Atmospheric CO2
    Lin Zhong-Bing
    Zhang Ren-Duo
    PEDOSPHERE, 2012, 22 (04) : 489 - 496
  • [9] Dynamics of Soil Organic Carbon Under Uncertain Climate Change and Elevated Atmospheric CO2
    LIN Zhong-Bing and ZHANG Ren-Duo 2 Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology
    Pedosphere, 2012, (04) : 489 - 496
  • [10] Sensitivity of the DSSAT model in simulating maize yield and soil carbon dynamics in arid Mediterranean climate: Effect of soil, genotype and crop management
    Attia, Ahmed
    El-Hendawy, Salah
    Al-Suhaibani, Nasser
    Tahir, Muhammad Usman
    Mubushar, Muhammad
    Vianna, Murilo dos Santos
    Ullah, Hayat
    Mansour, Elsayed
    Datta, Avishek
    FIELD CROPS RESEARCH, 2021, 260