环境科学
土壤碳
土壤水分
碳循环
底土
时序
固碳
总有机碳
土壤有机质
土壤科学
二氧化碳
生态系统
环境化学
生态学
化学
生物
作者
Karsten Kalbitz,Klaus Kaiser,Sabine Fiedler,Angelika Kölbl,Wulf Amelung,Tino Bräuer,Zhihong Cao,Axel Don,Pieter Meiert Grootes,Reinhold Jahn,Lorenz Schwark,Vanessa Vogelsang,Livia Wissing,Ingrid Kögel‐Knabner
摘要
Abstract More than 50% of the world's population feeds on rice. Soils used for rice production are mostly managed under submerged conditions (paddy soils). This management, which favors carbon sequestration, potentially decouples surface from subsurface carbon cycling. The objective of this study was to elucidate the long‐term rates of carbon accrual in surface and subsurface soil horizons relative to those of soils under nonpaddy management. We assessed changes in total soil organic as well as of inorganic carbon stocks along a 2000‐year chronosequence of soils under paddy and adjacent nonpaddy management in the Y angtze delta, C hina. The initial organic carbon accumulation phase lasts much longer and is more intensive than previously assumed, e.g., by the I ntergovernmental P anel on C limate C hange ( IPCC ). Paddy topsoils accumulated 170–178 kg organic carbon ha −1 a −1 in the first 300 years; subsoils lost 29–84 kg organic carbon ha −1 a −1 during this period of time. Subsoil carbon losses were largest during the first 50 years after land embankment and again large beyond 700 years of cultivation, due to inorganic carbonate weathering and the lack of organic carbon replenishment. Carbon losses in subsoils may therefore offset soil carbon gains or losses in the surface soils. We strongly recommend including subsoils into global carbon accounting schemes, particularly for paddy fields.
科研通智能强力驱动
Strongly Powered by AbleSci AI