A comparison of different methods of source apportionment of nutrients to river basins

被引:14
|
作者
Behrendt, H [1 ]
机构
[1] Inst Freshwater Ecol & Inland Fisheries, D-12623 Berlin, Germany
关键词
diffuse emissions; nutrients; river basins; retention;
D O I
10.1016/S0273-1223(99)00334-0
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Seven different methods of source apportionment were applied in an analysis of the nutrient emissions from point and diffuse sources of 14 river basins in Northeastern Germany. The aim wits to compare the results relating to the uncertainties of the methods and to test whether the difference between the emissions and load is caused by systematical errors or by retention and loss processes in the river systems. Beside the simplest method, where the diffuse emission is the difference between the observed transport and the point source inventory, other immission methods including a nutrient retention term re applied. The emission methods used also estimate the diffuse nutrient inputs by different ways. For all methods the relative standard deviation of the estimated diffuse emission was calculated for each of the river basins. The mean standard deviation of the original data sets for all emission methods and the immission approaches with the retention term was 22% for nitrogen and 48% for phosphorus. By variation of additionally introduced coefficients this standard deviation can be reduced to 18% and 24% for nitrogen and phosphorus, respectively. Tests regarding possible systematical under- and/or overestimation of the measured load and the diffuse emissions, respectively, show indications of such a behavior for phosphorus, only. Nevertheless, a large difference between the nutrient emissions and the load remains, which can only be explained by intensive retention processes. (C) 1999 IAWQ Published by Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:179 / 187
页数:9
相关论文
共 50 条
  • [31] Characterization and source apportionment of water pollution in Jinjiang River, China
    Chen, Haiyang
    Teng, Yanguo
    Yue, Weifeng
    Song, Liuting
    ENVIRONMENTAL MONITORING AND ASSESSMENT, 2013, 185 (11) : 9639 - 9650
  • [32] Water source dynamics of high Arctic river basins
    Blaen, Phillip J.
    Hannah, David M.
    Brown, Lee E.
    Milner, Alexander M.
    HYDROLOGICAL PROCESSES, 2014, 28 (10) : 3521 - 3538
  • [33] RECEPTOR ORIENTED METHODS OF AIR PARTICULATE SOURCE APPORTIONMENT
    COOPER, JA
    WATSON, JG
    JOURNAL OF THE AIR POLLUTION CONTROL ASSOCIATION, 1980, 30 (10): : 1116 - 1125
  • [34] Statistical methods for source apportionment of riverine loads of pollutants
    Grimvall, A
    Stalnacke, P
    ENVIRONMETRICS, 1996, 7 (02) : 201 - 213
  • [35] Receptor methods for VOC source apportionment in urban environments
    Lewis, CW
    URBAN AIR POLLUTION: MONITORING AND CONTROL STRATEGIES, 1996, 8 : 225 - 234
  • [36] A majorization comparison of apportionment methods in proportional representation
    Marshall, AW
    Olkin, I
    Pukelsheim, F
    SOCIAL CHOICE AND WELFARE, 2002, 19 (04) : 885 - 900
  • [37] A majorization comparison of apportionment methods in proportional representation
    Albert W. Marshall
    Ingram Olkin
    Friedrich Pukelsheim
    Social Choice and Welfare, 2002, 19 : 885 - 900
  • [38] Variation of phosphorus concentration and flux in Wujiang River entering the Yangtze River and source apportionment
    Lou B.
    Huang B.
    Huang X.
    Deng S.
    Zhuo H.
    Hupo Kexue/Journal of Lake Sciences, 2024, 36 (01): : 64 - 76
  • [39] PAHs in sediments of the Black River and the Ashtabula River, Ohio: source apportionment by factor analysis
    Christensen, ER
    Bzdusek, PA
    WATER RESEARCH, 2005, 39 (04) : 511 - 524
  • [40] Nutrients dynamics in the main river basins of the centre-southern region of Chile
    Pizarro, Jaime
    Vergara, Pablo M.
    Rodriguez, Jose A.
    Sanhueza, Pedro A.
    Castro, Sergio A.
    JOURNAL OF HAZARDOUS MATERIALS, 2010, 175 (1-3) : 608 - 613