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A comparative study of nutrient transfer via surface runoff from two small agricultural catchments in north China

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Environmental Geology

Abstract

A field study was conducted to determine the effect of landscape spatial pattern and micro-topography on nutrient transfer via runoff from two catchments into Yuqiao Reservoir in north China. The surface runoff discharge was measured during rainfall events and water samples were analyzed in 2004 and 2005. The mean annual total nitrogen (TN) and total phosphorus (TP) exports per unit area from Caogezhuang catchment (C catchment) were 1.048 and 0.561 kg ha−1 year−1, respectively, while the TN and TP exports from Taohuasi catchment (T catchment) were 0.158 and 0.027 kg ha−1 year−1. In both catchments, village and vineyard shared the highest nutrient export ability due to the accumulated animal waste and heavy application of fertilizer and manure. In T catchment, the distance of village and vineyard was about 1,500 m away from the receiving water and in between were woodland and cropland. In the hydrological pathway, there were sink landscape structures of small stone dams, roadside swale, vegetated filter strip and dry ponds, which could detain water and nutrients. In C catchment, the distance between the village and the receiving water was about 200 m, and the hydrological pathway was compacted roads and ditches with no sink structures. It is suggested that the distance between the pollution source area and the receiving water and the micro-topographical features were the main factors to control the great difference in nutrient export rates.

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References

  • Bergkamp G (1998) A hierarchical view of the interactions of runoff and infiltration with vegetation and microtopography in semiarid shrublands. Catena 33:201–220

    Google Scholar 

  • Beven KJ, Kirkby MJ (1979) A physically based variable contributing area model of basin hydrology. Hydrol Sci Bull 24:43–69

    Article  Google Scholar 

  • Boyer EW, Goodale CL, Jaworski NA, Howarth RW (2002) Anthropogenic nitrogen sources and relationships to riverine nitrogen export in the northeastern USA. Biogeochemistry 57,58:137–169

    Google Scholar 

  • Cammeraat ELH (2004) Scale dependent thresholds in hydrological and erosion response of a semi-arid catchment in southeast Spain. Agric Ecosyst Environ 104:317–332

    Article  Google Scholar 

  • Cao ZH (2003) Effect of fertilization on water quality—effect of fertilization of on environment quality (2). Soils 35(5):353–363 (in Chinese)

    Google Scholar 

  • Cao WZ, Hong HS, Zhang YZ, Chen NW, Zeng Y, Wang WP (2006) Anthropogenic nitrogen sources and exports in a village-scale catchment in southeast China. Environ Geochem Hlth 28(1–2):45–51

    Article  Google Scholar 

  • Casey RE, Klaine SJ (2001) Nutrient attenuation by a riparian wetland during natural and artificial runoff events. J Environ Qual 30:1720–1731

    Google Scholar 

  • Chen LD, Fu BJ, Zhang SR, Qiu J, Guo XD, Yang FL (2002) A comparative study on nitrogen-concentration dynamics in surface water in a heterogeneous landscape. Environ Geol 42:424–432

    Article  Google Scholar 

  • Chen LD, Peng HJ, Fu BJ, Qiu J, Zhang SR (2005) Seasonal variation of nitrogen-concentration in the surface water and its relationship with land use in a catchment of northern China. J Environ Sci 17(2):224–231

    Google Scholar 

  • Chen NW, Zhang LP, Hong HS, Liu JC (2004) Estimation of household wastewater loads from Jiulong river watershed. J Xiamen Univ (Nat Sci) 43(Suppl):249–253 (in Chinese)

    Google Scholar 

  • Ebina J, Tsutsui T, Shirai T (1983) Simultaneous determination of total nitrogen and total phosphorus in water using peroxodisulfate oxidation. Water Res 17:1721–1726

    Article  Google Scholar 

  • Fiener P, Auerswald K, Weigand S (2005) Managing erosion and water quality in agricultural watersheds by small detention ponds. Agric Ecosyst Environ 110:132–142

    Article  Google Scholar 

  • Haygarth PM, Condron LM, Heathwaite AL, Turnerd BL, Harris GP (2005) The phosphorus transfer continuum: linking source to impact with an interdisciplinary and multi-scaled approach. Sci Total Environ 344:5–14

    Google Scholar 

  • Heathwaite AL, Fraser AI, Johnes PJ, Hutchins M, Lord E, Butterfield D (2003) The phosphorus indicators tool a simple model of diffuse P loss from agricultural land to water. Soil Use Manage 19:1–11

    Article  Google Scholar 

  • Heathwaite AL, Quinn PF, Hewett CJM (2005) Modelling and managing critical source areas of diffuse pollution from agricultural land using flow connectivity simulation. J Hydrol 304:446–461

    Article  Google Scholar 

  • Herpe YV, Troch PA (2000) Spatial and temporal variations in surface water nitrate concentrations in a mixed land use catchment under humid temperate climatic conditions. Hydrol Process 14:2439–2455

    Article  Google Scholar 

  • Hill AR (1996) Nitrate removal in stream riparian zones. J Environ Qual 25:743–755

    Google Scholar 

  • Huang MB , Zhang L (2004) Hydrological responses to conservation practices in a catchment of the Loess Plateau China. Hydrol Process 18:1885–1898

    Article  Google Scholar 

  • Imeson AC, Prinsen HAM (2004) Vegetation patterns as biological indicators for identifying runoff and sediment source and sink areas for semi-arid landscapes in Spain. Agric Ecosyst Environ 104:333–342

    Article  Google Scholar 

  • Kirkby M, Bracken L, Reaney S (2002) The influence of land use soils and topography on the delivery of hillslope runoff to channels in SE Spain. Earth Surf Proc Land 27:1459–1473

    Article  Google Scholar 

  • Lane SN, Brookes CJ, Kirkby MJ, Holden J (2004) A network-index-based version of TOPMODEL for use with high-resolution digital topographic data. Hydrol Process 18:191–201

    Article  Google Scholar 

  • Li Y, Zhang JB (1999) Agricultural diffuse pollution from fertilisers and pesticides in China. Water Sci Technol 39(3):25–32

    Article  Google Scholar 

  • Liu CM, Xia J (2004) Water problems and hydrological research in the Yellow River and the Huai and Hai River basins of China. Hydrol Process 18:2197–2210

    Article  Google Scholar 

  • Mander U, Kull A, Kuusemets V, Tamm T (2000) Nutrient runoff dynamics in a rural catchment: influence of land-use changes climatic fluctuations and ecotechnological measures. Ecol Eng 14:405–417

    Article  Google Scholar 

  • McDowell RW, Biggs BJF, Sharpley AN, Nguyen L (2004) Connecting phosphorus loss from agricultural landscape to surface water. Chem Biol 20(1):1–40

    Google Scholar 

  • McDowell R, Sharpley A, Folmar G (2001) Phosphorus export from an agricultural watershed: linking source and transport mechanisms. J Environ Qual 30:1587–1595

    Article  Google Scholar 

  • Ngoye E, Machiwa JF (2004) The influence of land-use patterns in the Ruvu river watershed on water quality in the river system. Phys Chem Earth 29:1161–1166

    Google Scholar 

  • Smith VH, Tilman GD, Nekol JC (1999) Eutrophication: impacts of excess nutrient inputs on freshwater marine and terrestrial ecosystems. Environ Pollut 100:179–196

    Article  Google Scholar 

  • Walter MT, Walter MF, Brooks ES, Steenhuis TS, Boll J, Weiler K (2000) Hydrologically sensitive areas: variable source area hydrology implications for water quality risk assessment. J Soil Water Conserv 3:277–284

    Google Scholar 

  • Wang XH, Yin CQ, Shan BQ (2004) Control of diffuse P-pollutants by multiple buffer/detention landscape structures by Yuqiao Reservoir, North China. J Environ Sci 16(4):602–606

    Google Scholar 

  • Wang XH, Yin CQ, Shan BQ (2005) The role of diversified landscape buffer structures for water quality improvement in an agricultural watershed North China. Agric Ecosyst Environ 107:381–396

    Article  Google Scholar 

  • Weld JL, Sharpley AN, Beegle DB, Gburek WJ (2000) Identifying critical sources of phosphorus export from agricultural watersheds. Nutr Cycl Agroecosys 59:29–38

    Article  Google Scholar 

  • Withers PJA, Lord EI (2002) Agricultural nutrient inputs to rivers and groundwaters in the UK policy environmental management and research needs. Sci Total Environ 282,283:9–24

    Google Scholar 

  • Wetzel RG (ed) (2001) Limnology: lake and river ecosystem, 3rd edn. Academic, San Diego, CA, pp 1006

  • Xia LZ, Yang LZ, Wu CJ, Wu YF (2003) Distribution of nitrogen and phosphorus loads in runoff in a representative town in Tailake Region. J Agron-Environ Sci 22(3):267–227 (in Chinese)

    Google Scholar 

  • Yin CQ, Zhao M, Jin WG, Lan ZW (1993) A multi-pond system as a protective zone for the management of lakes in China. Hydrobiologia 251:321–329

    Article  Google Scholar 

  • Zhu X (1991) Control of eutrophication of yuqiao reservoir. Science and Technology Press of Tianjin, Tianjin, China (in Chinese)

Download references

Acknowledgments

The authors gratefully acknowledge the financial support by the National Basic Research Priorities Program (2006CB403306) and the National Hi-Tech Research Program (2002AA601011-05). We are also grateful to the local farmers for their field assistance, to Desiree Tullos, Janice Willson, Alice Honig and two anonymous reviewers for their helpful comments and language corrections of the manuscript.

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Correspondence to Chengqing Yin.

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Lu, H., Yin, C., Wang, W. et al. A comparative study of nutrient transfer via surface runoff from two small agricultural catchments in north China. Environ Geol 52, 1549–1558 (2007). https://doi.org/10.1007/s00254-006-0599-0

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  • DOI: https://doi.org/10.1007/s00254-006-0599-0

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