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Shifts in Carbon Stocks through Soil Profiles Following Management Change in Intensive Agricultural Systems 被引量:4

Shifts in Carbon Stocks through Soil Profiles Following Management Change in Intensive Agricultural Systems
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摘要 Soil carbon content is an important ecosystem property, especially under the ongoing climate change. The stability of soil organic matter (SOM) is controlled by environmental and biological factors including anthropogenic-induced agricultural management change. However, understanding the effects of anthropogenic activities (e.g., intensive agricultural practices) on carbon stability of soil profiles remains a challenge. The objective of this study was to determine the changes in carbon stocks through soil profiles following agricultural management change from grain fields to greenhouse vegetable fields. The sampling sites were located in an intensive vegetable production area in northernChina. A total of 20 pairs of grain fields (GF) and adjacent vegetable fields (VF) within a distance of50 mwere selected. The results showed that soil organic carbon (SOC) storage increased by 10.6 mg C ha-1 in upper soil layers but decreased by 5.3 mg C hm2 indeeper soil layers due to large input of organic manure and chemical fertilizer following the conversion from GF to VF. Conversion to VF also led to increased dissolved organic carbon (DOC) and dissolved organic nitrogen (DON) concentrations. Extremely higher input of chemical N fertilizer in the VF led to the soil C:N ratio decreased by 2.02 times and the -N leached to deeper soils increased by 3.7 times compared to that in the GF. The pH value and microbial biomass carbon (MBC) content were lower in the VF than in the GF. These results indicate that excessive nitrogen application as fertilizers might lead to deeper soil carbon depletion. Reducing nitrogen addition in intensive agricultural systems is thus necessary to reduce soil carbon loss and to maintain a relatively sustainable soil system. Soil carbon content is an important ecosystem property, especially under the ongoing climate change. The stability of soil organic matter (SOM) is controlled by environmental and biological factors including anthropogenic-induced agricultural management change. However, understanding the effects of anthropogenic activities (e.g., intensive agricultural practices) on carbon stability of soil profiles remains a challenge. The objective of this study was to determine the changes in carbon stocks through soil profiles following agricultural management change from grain fields to greenhouse vegetable fields. The sampling sites were located in an intensive vegetable production area in northernChina. A total of 20 pairs of grain fields (GF) and adjacent vegetable fields (VF) within a distance of50 mwere selected. The results showed that soil organic carbon (SOC) storage increased by 10.6 mg C ha-1 in upper soil layers but decreased by 5.3 mg C hm2 indeeper soil layers due to large input of organic manure and chemical fertilizer following the conversion from GF to VF. Conversion to VF also led to increased dissolved organic carbon (DOC) and dissolved organic nitrogen (DON) concentrations. Extremely higher input of chemical N fertilizer in the VF led to the soil C:N ratio decreased by 2.02 times and the -N leached to deeper soils increased by 3.7 times compared to that in the GF. The pH value and microbial biomass carbon (MBC) content were lower in the VF than in the GF. These results indicate that excessive nitrogen application as fertilizers might lead to deeper soil carbon depletion. Reducing nitrogen addition in intensive agricultural systems is thus necessary to reduce soil carbon loss and to maintain a relatively sustainable soil system.
出处 《Agricultural Sciences》 2015年第3期304-314,共11页 农业科学(英文)
关键词 Carbon SEQUESTRATION INTENSIVE AGRICULTURAL Systems FERTILIZATION Soil Profiles Carbon Sequestration Intensive Agricultural Systems Fertilization Soil Profiles
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  • 1李世清,李生秀,邵明安,张兴昌.半干旱农田生态系统作物根系和施肥对土壤微生物体氮的影响[J].植物营养与肥料学报,2004,10(6):613-619. 被引量:12
  • 2彭佩钦,张文菊,童成立,仇少君,张文超.洞庭湖湿地土壤碳、氮、磷及其与土壤物理性状的关系[J].应用生态学报,2005,16(10):1872-1878. 被引量:128
  • 3Richard D B, Tania C S, Lisa C, Ian R H. Linkages between soil biota, nitrogen availability, and plant nitrogen uptake in a mountain ecosystem in the Scottish Highlands[J]. Appl. Soil Ecol., 2002, 19:121-134.
  • 4Parfitt R L, Yeates G W, Ross D Jet al. Relationships between soil biota, nitrogen and phosphorus availability, and pasture growth under organic and conventional management[J]. Appl. Soft Ecol., 2005, 28: 1-13.
  • 5Smith J L. Cycling of nitrogen through microbial activity[A]. Hatfield J L, Stewart B A. Soil biology: Effects on soil quality[C]. America: CRC Press Inc, 1994. 91-120.
  • 6Anderson J P E, Domash K H. Quantities of plant nutrients in the microbial biomass of selected soils[ J]. Soil Sci., 1980, 130 : 211-216.
  • 7Aslam T, Choudhary M A, Saggar S. Tillage impacts on soil microbial biomass C .N and P, earthworms and agronomy after two years of cropping following permanent pasture in New Zealand[ J]. Soil Till.Res., 1999, 51: 103-111.
  • 8Wu J, Joergensen R G, Pommerening B et al. Measurement of soil microbial biomass C by fumigation-extraction an automated procedure [J]. Soil Biol. Biochem., 1990, 20: 1167-1169.
  • 9陈国潮,何振立.红壤不同利用方式下的微生物量研究[J].土壤通报,1998,29(6):276-278. 被引量:52
  • 10李世清,李生秀.土壤微生物体氮测定方法的研究[J].植物营养与肥料学报,2000,6(1):75-83. 被引量:34

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