No-Till Impact on Soil and Soil Organic Carbon Erosion under Crop Residue Scarcity in Africa

被引:61
作者
Mchunu, Charmaine N. [3 ]
Lorentz, Simon [3 ]
Jewitt, Graham [3 ]
Manson, Alan [2 ]
Chaplot, Vincent [1 ]
机构
[1] Univ KwaZulu Natal, IRD BIOEMCO, Sch Bioresources Engn & Environm Hydrol, ZA-3209 Scottsville, South Africa
[2] KwaZulu Natal Dep Agr & Environm Affairs, Soil Fertil & Analyt Serv, ZA-3200 Pietermaritzburg, South Africa
[3] Univ KwaZulu Natal, Sch Bioresources Engn & Environm Hydrol, ZA-3209 Scottsville, South Africa
关键词
LONG-TERM TILLAGE; SIMULATED RAINFALL; MATTER CHANGES; RUNOFF; ENRICHMENT; SEDIMENT; DYNAMICS; NITROGEN; SEQUESTRATION; MANAGEMENT;
D O I
10.2136/sssaj2010.0359
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Although no-till (NT) is now practiced in many countries of the world, for most smallholders, the crop residues are of such a value that they cannot be left on the soil surfaces to promote soil protection, thus potentially limiting NT benefits and adoption. In this study our main objective was to evaluate runoff, soil, and soil organic carbon (SOC) losses from traditional small-scale maize (Zea mays) field under conventional tillage (T) and NT, with crop residues cover of less than 10% during the rainy season, in South Africa. Six runoff plots of 22.5 m(2) (2.25 x 10 m) under NT and T since 2002 were considered. At each plot, soil bulk density (rho(b)) and SOC content of the 0-0.02 m layer were estimated at nine pits. Top-soil SOC stocks were 26% higher under NT than under T (P = 0.001). The NT reduced soil losses by 68% (96.8 vs. 301.5 g m(-2) yr(-1), P = 0.001) and SOC losses by 52% (7.7 vs. 16.2 g C m(-2) yr(-1), P = 0.001), and differences in runoff were not significant. Dissolved organic carbon accounted for about 10% of total SOC losses and showed significantly higher concentrations under T than NT (1.49 versus 0.86 mg C m(-2) yr(-1)). The less erosion in NT compared to T was explained by a greater occurrence under NT of indurated crusts, less prone to soil losses. These results showed the potential of NT even with low crop residue cover (<10%) to significantly reduce soil and SOC losses by water under small-scale agriculture.
引用
收藏
页码:1503 / 1512
页数:10
相关论文
共 66 条
[21]  
EGHBALL B, 1994, J SOIL WATER CONSERV, V49, P201
[22]  
FAO, 2008, STAT FOOD AGR 2008 B
[23]   Soil microbial communities under conventional-till and no-till continuous cotton systems [J].
Feng, Y ;
Motta, AC ;
Reeves, DW ;
Burmester, CH ;
van Santen, E ;
Osborne, JA .
SOIL BIOLOGY & BIOCHEMISTRY, 2003, 35 (12) :1693-1703
[24]   SORBED CHEMICAL-TRANSPORT IN OVERLAND-FLOW .1. A NUTRIENT AND PESTICIDE ENRICHMENT MECHANISM [J].
GHADIRI, H ;
ROSE, CW .
JOURNAL OF ENVIRONMENTAL QUALITY, 1991, 20 (03) :628-633
[25]   Conservation agriculture and smallholder farming in Africa: The heretics' view [J].
Giller, Ken E. ;
Witter, Ernst ;
Corbeels, Marc ;
Tittonell, Pablo .
FIELD CROPS RESEARCH, 2009, 114 (01) :23-34
[26]  
GRANATSTEIN DM, 1987, BIOL FERT SOILS, V5, P265, DOI 10.1007/BF00256912
[27]   Biodegradability of soluble organic matter in maize-cropped soils [J].
Gregorich, EG ;
Beare, MH ;
Stoklas, U ;
St-Georges, P .
GEODERMA, 2003, 113 (3-4) :237-252
[28]   No-till: The quiet revolution [J].
Huggins, David R. ;
Reganold, John P. .
SCIENTIFIC AMERICAN, 2008, 299 (01) :70-77
[29]  
IUSS Working Group, 1998, 84 IUSS WORK GROUP F, V84
[30]   Carbon dioxide evolution in runoff from simulated rainfall on long-term no-till and plowed soils in southwestern Ohio [J].
Jacinthe, PA ;
Lal, R ;
Kimble, JM .
SOIL & TILLAGE RESEARCH, 2002, 66 (01) :23-33