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Analysis of field-scale spatial correlations and variations of soil nutrients using geostatistics
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  • 作者:Ruimin Liu ; Fei Xu ; Wenwen Yu ; Jianhan Shi…
  • 关键词:Nonpoint source pollution ; Soil nutrient ; Geostatistics ; Spatial variability ; Spatial correlation coefficient
  • 刊名:Environmental Monitoring and Assessment
  • 出版年:2016
  • 出版时间:February 2016
  • 年:2016
  • 卷:188
  • 期:2
  • 全文大小:1,173 KB
  • 参考文献:Allen, R. W., Davies, H., Cohen, M. A., Mallach, G., Kaufman, J. D., & Adar, S. D. (2009). The spatial relationship between traffic-generated air pollution and noise in 2 US cities. Environmental Research, 109(3), 334–342.CrossRef
    Arslan, A. (2012). Spatial and temporal mapping of groundwater salinity using ordinary kriging and indicator kriging: the case of Bafra Plain, Turkey. Agricultural Water Management, 113, 57–63.CrossRef
    Aulakh, M. S., & Pasricha, N. S. (1998). The effect of green manuring and fertilizer N application on enhancing crop productivity in mustard-rice rotation in semi-arid subtropical regions. European Journal of Agronomy, 8, 51–58.CrossRef
    Bandyopadhyay, K. K., Misra, A. K., Ghosh, P. K., & Hati, K. M. (2010). Effect of integrated use of farmyard manure and chemical fertilizers on soil physical properties and productivity of soybean. Soil & Tillage Research, 110(1), 115–125.CrossRef
    Castrignanò, A., Goovaerts, P., Lulli, L., & Bragato, G. (2000). A geostatistical approach to estimate probability of occurrence of tuber melanosporum in relation to some soil properties. Geoderma, 98, 95–113.CrossRef
    Chaplot, V., Lorentz, S., Podwojewski, P., & Jewitt, G. (2010). Digital mapping of a-horizon thickness using the correlation between various soil properties and soil apparent electrical resistivity. Geoderma, 157(3–4), 154–164.CrossRef
    Chen, C. Y., Pickhardt, P. C., Xu, M. Q., & Folt, C. L. (2008). Mercury and arsenic bioaccumulation and eutrophication in Baiyangdian Lake, China. Water Air & Soil Pollution, 190(1–4), 115–127.CrossRef
    Chen, D. J., Lu, J., Shen, Y. N., Dahlgren, R. A., & Jin, S. Q. (2009). Estimation of critical nutrient amounts based on input-output analysis in an agriculture watershed of eastern China. Agriculture Ecosystems & Environment, 134, 159–167.CrossRef
    Chen, D., Dahlgren, R. A., Shen, Y., & Lu, J. (2012a). A Bayesian approach for calculating variable total maximum daily loads and uncertainty assessment. Science of the Total Environment, 430(14), 59–67.
    Chen, Y., Liu, R., Sun, C., Zhang, P., Feng, C., & Shen, Z. (2012b). Spatial and temporal variations in nitrogen and phosphorous nutrients in the Yangtze river estuary. Marine Pollution Bulletin, 64(10), 2083–2089.CrossRef
    Cook, M. G., Hunt, P. G., Stone, K. C., & Canterberry, J. H. (1996). Reducing diffuse pollution through implementation of agricultural Best Management Practices: a case study. Water Science & Technology, 33(4), 191–196.CrossRef
    Daya, A. A. (2012). Reserve estimation of central part of Choghart north anomaly iron ore deposit through ordinary kriging method. International Journal of Mining Science and Technology, 22, 573–577.CrossRef
    De Wit, M., Meinardi, C., Wendland, F., & Kunkel, R. (2000). Modelling water fluxes for the analysis of diffuse pollution at the river basin scale. Hydrological Processes, 14(10), 1707–1723.CrossRef
    Diaz, R. J., & Rosenberg, R. (2008). Spreading dead zones and consequences for marine ecosystems. Science, 321, 926–929.CrossRef
    Dou, W., & Zhao, Z. (1998). Contamination of DDT and BHC in water, sediments, and fish (Carassius auratus) muscle from Baiyangdian Lake. Acta Scientiae Circumstantiae, 18, 208–312.
    Environmental Protection Agency (2008). Nonpoint source pollution: the nation’s largest water quality problem [online]. Http: //www.​epa.​gov/​owow/​nps/​facts/​point1.​htm .
    Fu, W., Tunney, H., & Zhang, C. (2010). Spatial variation of soil nutrients in a dairy farm and its implications for site-specific fertilizer application. Soil & Tillage Research, 106, 185–193.CrossRef
    Gallichand, J., Goulet, M., Dang, T., & Huang, M. (2003). Effect of increased fertilizer applications to wheat crop on soil-water depletion in the loess plateau, China. Agricultural Water Management, 58(3), 267–278.CrossRef
    Gao, H., Bai, J., Xiao, R., Liu, P., Jiang, W., & Wang, J. (2013). Levels, sources and risk assessment of trace elements in wetland soils of a typical shallow freshwater lake, China. Stochastic Environmental Research & Risk Assessment, 27(1), 275–284.CrossRef
    Giri, S., Nejadhashemi, A. P., & Woznicki, S. A. (2012). Evaluation of targeting methods for implementation of Best Management Practices in the Saginaw River Watershed. Journal of Environmental Management, 103, 24–40.CrossRef
    Goovaerts, P. (1997). Geostatistics for natural resources evaluation (p. 483). New York: Oxford University Press.
    Goovaerts, P. (2001). Geostatistical modelling of uncertainty in soil science. Geoderma, 103, 3–26.CrossRef
    Gulser, F. (2005). Effects of ammonium sulphate and urea on NO3- and NO2-accumulation, nutrient contents and yield criteria in spinach. Scientia Horticulturae, 106, 330–340.CrossRef
    Jiang, H. L., Liu, G. S., Wang, R., Liu, S. D., Han, F. G., Yang, Y. F., et al. (2011). Delineating site-specific quality-based management zones for a tobacco field. Soil Science, 176(4), 206–212.CrossRef
    Kerry, R., Goovaerts, P., Rawlins, B. G., & Marchant, B. P. (2012). Disaggregation of legacy soil data using area to point kriging for mapping soil organic carbon at the regional scale. Geoderma, 170(1), 347–358.CrossRef
    Lam, Q. D., Schmalz, B., & Fohrer, N. (2010). Modelling point and diffuse source pollution of nitrate in a rural lowland catchment using the SWAT model. Agricultural Water Management, 97, 317–325.CrossRef
    Lam, Q. D., Schmalz, B., & Fohrer, N. (2011). The impact of agricultural Best Management Practices on water quality in a North German lowland catchment. Environmental Monitoring and Assessment, 183, 351–379.CrossRef
    Lark, R. M., & Ferguson, R. B. (2004). Mapping risk of soil nutrient deficiency or excess by disjunctive and indicator kriging. Geoderma, 118, 39–53.CrossRef
    Lee, J. J., Jang, C. S., Wang, S. W., & Liu, C. W. (2007). Evaluation of potential health risk of arsenic-affected groundwater using indicator kriging and dose response model. Science of the Total Environment, 384, 151–162.CrossRef
    Lee, M. S., Park, G. A., Park, M. J., Park, J. Y., Lee, J. W., & Kim, S. J. (2010). Evaluation of non-point source pollution reduction by applying Best Management Practices using a SWAT model and QuickBird high resolution satellite imagery. Journal of Environmental Sciences, 22(6), 826–833.CrossRef
    Liu, R. M., Yang, Z. F., Shen, Z. Y., Yu, S. L., Ding, X. W., Xing, W., & Liu, F. (2009). Estimating nonpoint source pollution in the upper Yangtze river using the export coefficient model, remote sensing, and geographical information system. Journal of Hydraulic Engineering, 135(9), 698–704.CrossRef
    Liu, R., Zhang, P., Wang, X., Chen, Y., & Shen, Z. (2013). Assessment of effects of best management practices on agricultural non-point source pollution in Xiangxi river watershed. Agricultural Water Management, 117(1), 9–18.CrossRef
    Liu, R., Wang, J., Shi, J., Chen, Y., Sun, C., Zhang, P., & Shen, Z. (2014a). Runoff characteristics and nutrient loss mechanism from plain farmland under simulated rainfall conditions. Science of the Total Environment, 468–469, 1069–1077.CrossRef
    Liu, R., Zhang, P., Wang, X., Wang, J., Yu, W., & Shen, Z. (2014b). Cost-effectiveness and cost-benefit analysis of BMPs in controlling agricultural nonpoint source pollution in china based on the swat model. Environmental Monitoring & Assessment, 186(12), 9011–9022.CrossRef
    Lloyd, C. D., & Atkinson, P. M. (2001). Assessing uncertainty in estimates with ordinary and indicator kriging. Computers & Geosciences, 27, 929–937.CrossRef
    Logan, T. J. (1993). Agricultural best management practices for water pollution control: current issues. Agriculture Ecosystem & Environment, 46, 223–231.CrossRef
    Lu, R. K. (2000). Chemical analysis methods of agricultural soil (Chinese) (pp. 45–78). Beijing: Press of China Agricultural technology.
    Ma, Q., Yu, W. T., Jiang, C. M., Zhou, H., & Xu, Y. G. (2012). The influences of mineral fertilization and crop sequence on sustainability of corn production in northeastern China. Agriculture Ecosystems & Environment, 158(3), 110–117.CrossRef
    Maringanti, C., Chaubey, I., Arabi, M., & Engel, B. (2011). Application of a multi-objective optimization method to provide least cost alternatives for NPS pollution control. Environmental Management, 48(3), 448–461.CrossRef
    Marinoni, O. (2003). Improving geological models using a combined ordinary–indicator kriging approach. Engineering Geology, 69, 37–45.CrossRef
    Matheron, G. (1965). Les variables regionalisees et leur estimation. Paris: Masson.
    McDowell, R. W., Weerden, T. J., & Campbell, J. (2011). Nutrient losses associated with irrigation, intensification and management of land use: a study of large scale irrigation in North Otago, New Zealand. Agricultural Water Management, 98, 877–885.CrossRef
    Meirvenne, M. V., & Goovaerts, P. (2001). Evaluating the probability of exceeding a site-specific soil cadmium contamination threshold. Geoderma, 102, 75–100.CrossRef
    Monaghan, R. M., Wilcock, R. J., Smith, L. C., Tikkisetty, B., Thorrold, B. S., & Costall, D. (2007). Linkages between land management activities and water quality in an intensively farmed catchment in southern New Zealand. Agriculture Ecosystems & Environment, 118, 211–222.CrossRef
    Panagopoulos, Y., Makropoulos, C., & Mimikou, M. (2011). Reducing surface water pollution through the assessment of the cost-effectiveness of BMPs at different spatial scales. Journal of Environmental Management, 92, 2823–2835.CrossRef
    Reungsang, P., Kanwar, R., Jha, M., Ahmad, K., & Saleh, A. (2005). Calibration and validation of swat for the upper maquoketa river watershed. Center for Agricultural & Rural Development Publications.
    Ritter, W. F., & Shirmohammadi, A. (2001). Agricultural non-point source pollution. New York: Lewis publishers.
    Rufino, M. M., Maynou, F., Abelló, P., Sola, L. G. D., & Yule, A. B. (2005). The effect of methodological options on geostatistical modelling of animal distribution: a case study with Liocarcinus depurator (crustacea: brachyura) trawl survey data. Fisheries Research, 76(2), 252–265.CrossRef
    Silva, J. A., & Uchida, R. S. (2000). Plant nutrient management in Hawaii’s soils, approaches for tropical and subtropical agriculture (pp. 87–89). University of Hawaii at Manoa: College of Tropical Agriculture and Human Resources.
    Stewart, W. M., Dibb, D. W., Johnston, A. E., & Smyth, T. J. (2005). The contribution of commercial fertilizer nutrients to food production. Agronomy Journal, 97(1), 1–6.CrossRef
    Tavares, M. T., Sousa, A. J., & Abreu, M. M. (2008). Ordinary kriging and indicator kriging in the cartography of trace elements contamination in São Domingos mining site (Alentejo, Portugal). Journal of Geochemical Exploration, 98, 43–56.CrossRef
    Tesfahunegn, G. B., Tamene, L., & Vlek, P. L. G. (2011). Catchment-scale spatial variability of soil properties and implications on site-specific soil management in northern ethiopia. Soil & Tillage Research, 117(6), 124–139.
    Thorburn, P. J., & Wilkinson, S. N. (2013). Conceptual frameworks for estimating the water quality benefits of improved agricultural management practices in large catchments. Agriculture Ecosystem & Environment, 180, 192–209.CrossRef
    Triantafilis, J., Odeh, I. O. A., Warr, B., & Ahmed, M. F. (2004). Mapping of salinity risk in the lower Namoi valley using non-linear kriging methods. Agricultural Water Management, 69, 203–231.CrossRef
    Tukura, B. W., Kagbu, J. A., & Gimba, C. E. (2011). Correlation analysis of organically bound trace metals and sediment in Kubanni, Dam, Zeria, Nigeria. Environmental Science & Technology, 4(4), 437–443.CrossRef
    Webster, R., & Oliver, M. A. (2001). Geostatistics for environmental scientists. Ltd, New York: John Wiley & Sons.
    Yang, L. Z., & Sun, B. (2008). Nutrients recycling, balance and management of agricultural ecological system in China (Chinese) (pp. 28–60). Beijing: Science Press.
    Zhang, F. S. (2011). Fertilizing technology based on soil nutrient test (Chinese) (pp. 11–23). Beijing: Science Press.
    Zhao, Y., Yang, Z., & Li, Y. (2010). Investigation of water pollution in Baiyangdian Lake, China. Procedia Environmental Sciences, 2, 737–748.CrossRef
    Zhao, Y., Xia, X. H., Yang, Z. F., & Xia, N. (2011). Temporal and spatial variations of nutrients in Baiyangdian Lake, north China. Journal of Environmental Informatics, 2, 102–108.CrossRef
  • 作者单位:Ruimin Liu (1)
    Fei Xu (1)
    Wenwen Yu (1)
    Jianhan Shi (1)
    Peipei Zhang (1)
    Zhenyao Shen (1)

    1. State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Xinjiekouwai Street, Beijing, 100875, China
  • 刊物类别:Earth and Environmental Science
  • 刊物主题:Environment
    Monitoring, Environmental Analysis and Environmental Ecotoxicology
    Ecology
    Atmospheric Protection, Air Quality Control and Air Pollution
    Environmental Management
  • 出版者:Springer Netherlands
  • ISSN:1573-2959
文摘
Spatial correlations and soil nutrient variations are important for soil nutrient management. They help to reduce the negative impacts of agricultural nonpoint source pollution. Based on the sampled available nitrogen (AN), available phosphorus (AP), and available potassium (AK), soil nutrient data from 2010, the spatial correlation, was analyzed, and the probabilities of the nutrient’s abundance or deficiency were discussed. This paper presents a statistical approach to spatial analysis, the spatial correlation analysis (SCA), which was originally developed for describing heterogeneity in the presence of correlated variation and based on ordinary kriging (OK) results. Indicator kriging (IK) was used to assess the susceptibility of excess of soil nutrients based on crop needs. The kriged results showed there was a distinct spatial variability in the concentration of all three soil nutrients. High concentrations of these three soil nutrients were found near Anzhou. As the distance from the center of town increased, the concentration of the soil nutrients gradually decreased. Spatially, the relationship between AN and AP was negative, and the relationship between AP and AK was not clear. The IK results showed that there were few areas with a risk of AN and AP overabundance. However, almost the entire study region was at risk of AK overabundance. Based on the soil nutrient distribution results, it is clear that the spatial variability of the soil nutrients differed throughout the study region. This spatial soil nutrient variability might be caused by different fertilizer types and different fertilizing practices.

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