Dynamic modeling of chemical fate and transport in multimedia environments at watershed scale-I: theoretical considerations and model implementation.
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[1] Kevin C Jones,et al. A dynamic level IV multimedia environmental model: Application to the fate of polychlorinated biphenyls in the United Kingdom over a 60‐year period , 2002, Environmental toxicology and chemistry.
[2] J. Meegoda,et al. Multimedia Model for Analysis of Contaminant Releases in Passaic River Watershed , 2004 .
[3] Yoram Cohen,et al. Dynamic partitioning of organic chemicals in regional environments: a multimedia screening-level modeling approach , 1990 .
[4] D. Mackay,et al. Mass transfer coefficient correlations for volatilization of organic solutes from water. , 1983, Environmental science & technology.
[5] N. Stuart,et al. A comparison among strategies for interpolating maximum and minimum daily air temperatures. Part II: The interaction between number of guiding variables and the type of interpolation method , 2001 .
[6] R. Nilson,et al. Atmospheric pumping: A mechanism causing vertical transport of contaminated gases through fractured permeable media , 1991 .
[7] D Mackay,et al. BETR-World: a geographically explicit model of chemical fate: application to transport of alpha-HCH to the Arctic. , 2004, Environmental pollution.
[8] Frank Wania,et al. A global distribution model for persistent organic chemicals , 1995 .
[9] Michael Matthies,et al. General Formulation of Characteristic Travel Distance for Semivolatile Organic Chemicals in a Multimedia Environment , 1998 .
[10] J. Devillers,et al. CHEMFRANCE: a regional level III fugacity model applied to France , 1995 .
[11] D. Mackay,et al. A quantitative water, air, sediment interaction (QWASI) fugacity model for describing the fate of chemicals in rivers , 1983 .
[12] M L Diamond,et al. Developing a multimedia model of chemical dynamics in an urban area. , 2000, Chemosphere.
[13] C. E. Cowan,et al. The Multi-Media Fate Model: A Vital Tool for Predicting the Fate of Chemicals, , 1995 .
[14] R. Hites,et al. OH Radical Reactions: The Major Removal Pathway for Polychlorinated Biphenyls from the Atmosphere , 1996 .
[15] A. King. Translating models across scales in the landscape , 1991 .
[16] D Mackay,et al. Development of continental scale multimedia contaminant fate models: Integrating GIS , 2001, Environmental science and pollution research international.
[17] R. Gardner,et al. Quantitative Methods in Landscape Ecology , 1991 .
[18] W. F. Spencer,et al. Behavior Assessment Model for Trace Organics in Soil: I. Model Description , 1983 .
[19] Louis J. Thibodeaux,et al. Environmental Chemodynamics: Movement of Chemicals in Air, Water, and Soil , 1995 .
[20] Dong Won Kim,et al. Use of the relative concentration to evaluate a multimedia model for PAHs in the absence of emission estimates. , 2004, Environmental science & technology.
[21] Yanming Feng,et al. GPS Water Vapor Estimation Using Interpolated Surface Meteorological Data from Australian Automatic Weather Stations , 2003 .
[22] W. Whitman,et al. The two film theory of gas absorption , 1962 .
[23] M. Labib,et al. A GIS-based multimedia watershed model: development and application. , 2004, Chemosphere.
[24] S. K. Jenson,et al. Extracting topographic structure from digital elevation data for geographic information-system analysis , 1988 .
[25] Y. Cohen,et al. Multimedia Environmental Distribution of Toxics (Mend-Tox). II: Software Implementation and Case Studies , 2002 .
[26] B. Hicks,et al. A preliminary multiple resistance routine for deriving dry deposition velocities from measured quantities , 1987 .
[27] Hassan A. Karimi,et al. Coupling methodologies for environmental models , 2000, Environ. Model. Softw..
[28] J. F. Clarke,et al. A multilayer model for inferring dry deposition using standard meteorological measurements , 1998 .
[29] Peter Ackers,et al. Sediment Transport: New Approach and Analysis , 1973 .
[30] W. K. Lewis,et al. Principles of Gas Absorption. , 1924 .
[31] D W Pennington,et al. An evaluation of chemical persistence screening approaches. , 2001, Chemosphere.
[32] Harold F. Hemond,et al. Chemical fate and transport in the environment , 1994 .
[33] Ø. Hov,et al. A two‐dimensional zonally averaged transport model including convective motions and a new strategy for the numerical solution , 1993 .
[34] D Mackay,et al. BETR North America: A regionally segmented multimedia contaminant fate model for North America , 2001, Environmental science and pollution research international.
[35] Q. Gao,et al. Dynamic modeling of chemical fate and transport in multimedia environments at watershed scale-II: trichloroethylene test case. , 2007, Journal of Environmental Management.
[36] John C Crittenden,et al. Development and evaluation of an environmental multimedia fate model CHEMGL for the Great Lakes region. , 2003, Chemosphere.
[37] Yoram Cohen,et al. Multimedia Environmental Distribution of Toxics (Mend-Tox). I: Hybrid Compartmental-Spatial Modeling Framework , 2002 .
[38] Sandra Dalvit Dunn,et al. Barometric pumping with a twist: VOC containment and remediation without boreholes , 1995 .
[39] T. Meyers,et al. A comparison of models for deriving dry deposition fluxes of O3 and SO2 to a forest canopy , 1988 .
[40] Thomas E. McKone,et al. Alternative modeling approaches for contaminant fate in soils: uncertainty, variability, and reliability , 1996 .