Soil organic matter dynamics after the conversion of arable land to pasture

被引:65
作者
Römkens, PFAM
van der Plicht, J
Hassink, J
机构
[1] DLO, Res Inst Agrobiol & Soil Fertil, AB, NL-9750 AC Haren, Netherlands
[2] Univ Groningen, Ctr Isotope Res, NL-9747 AG Groningen, Netherlands
关键词
organic matter; C-13; analyses; land use change; fractionation; pasture; maize;
D O I
10.1007/s003740050494
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Conversion of arable land (maize) to pasture will affect the soil organic matter (SOM) content. Changes in the SOM content were studied using a size- and density-fractionation method and C-13 analysis. Twenty-six years of maize cropping had resulted in a depletion of carbon stored in the macro-organic fractions (>150 mu m) and an increase in the <20 mu m fraction. Maize-derived carbon in the upper 20 cm increased from 10% in the finest fraction (<20 mu m) to 91% in the coarse (>250 mu m), light (b.d. <1.13 g cm(-3)) fractions. Pasture installation resulted in a rapid recovery of the total SOM content. Up to 90% of the pasture-derived carbon that was mineralized during maize cropping was replaced within 9 years. Especially the medium and coarse size (>150 mu m) and light (b.d. <1.13 g cm(-3)) fractions were almost completely regenerated by input of root-derived SOM. The amount of medium-weight and heavy macro-organic fractions (>150 mu m; b.d. >1.13 g cm(-3)) in the 0- to 20-cm layer was still 40-50% lower than in the continuous pasture plots. Average half-life times calculated from C-13 analyses ranged from 7 years in the light fractions to 56 years in heavy fractions. Fractionation results and C-13 data indicated that mechanical disturbance (plowing) during maize cropping had resulted in vertical displacement of dispersed soil carbon from the 0- to 20-cm layer down to 60-80 cm. Conversion of arable land to pasture, therefore, not only causes a regeneration of the soil carbon content, it also reduces the risk of contaminant transport by dispersed soil carbon.
引用
收藏
页码:277 / 284
页数:8
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