Generalizing Source Geometry of Site Contamination by Simulating and Analyzing Analytical Solution of Three-Dimensional Solute Transport Model
Author(s) -
Xingwei Wang,
Jiajun Chen,
Hao Wang,
Jianfei Liu
Publication year - 2014
Publication title -
mathematical problems in engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.262
H-Index - 62
eISSN - 1026-7077
pISSN - 1024-123X
DOI - 10.1155/2014/646495
Subject(s) - plume , diffusion , pollution , advection , enhanced data rates for gsm evolution , scale (ratio) , geometry , aquifer , pollutant , contamination , environmental science , generalization , mechanics , soil science , geology , geotechnical engineering , mathematics , groundwater , chemistry , meteorology , physics , engineering , thermodynamics , mathematical analysis , ecology , telecommunications , organic chemistry , quantum mechanics , biology
Due to the uneven distribution of pollutions and blur edge of pollutant area, there will exist uncertainty of source term shape in advective-diffusion equation model of contaminant transport. How to generalize those irregular source terms and deal with those uncertainties is very critical but rarely studied in previous research. In this study, the fate and transport of contaminant from rectangular and elliptic source geometry were simulated based on a three-dimensional analytical solute transport model, and the source geometry generalization guideline was developed by comparing the migration of contaminant. The result indicated that the variation of source area size had no effect on pollution plume migration when the plume migrated as far as five times of source side length. The migration of pollution plume became slower with the increase of aquifer thickness. The contaminant concentration was decreasing with scale factor rising, and the differences among various scale factors became smaller with the distance to field increasing
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