89
Environmental Fate Models
Han, Y., Kuo, M.T., Tseng, I., and Lu, C. (2007). Semicontinuous microcosm study of
aerobic cometabolism of trichloroethylene using toluene. J. Hazard. Mater. 148,
583–591.
Irwin, J.S. (1998). A Comparison of CALPUFF modeling results with 1977 INEL
feld data results. In Air Pollution Modeling and Its Application XII. (pp. 143–153).
Boston, MA: Springer.
Jittra, N., Pinthong, N., and Thepanondh, S. (2015). Performance evaluation of
AERMOD and CALPUFF air dispersion models in industrial complex area. Air
Soil Water Res. 8, ASWR-S32781.
Johnson, M., Isakov, V., Touma, J., Mukerjee, S., and Özkaynak, H. (2010). Evaluation
of land-use regression models used to predict air quality concentrations in an
urban area. Atmos. Environ. 44, 3660–3668.
Katharios, P., Seth-Smith, H.M., Fehr, A., Mateos, J.M., Qi, W., Richter, D., Nufer, L.,
Ruetten, M., Soto, M.G., and Ziegler, U. (2015). Environmental marine pathogen
isolation using mesocosm culture of sharpsnout seabream: striking genomic
and morphological features of novel Endozoicomonas sp. Sci. Rep. 5, 1–13.
Khan, S.J., and Ongerth, J.E. (2004). Modelling of pharmaceutical residues in Australian
sewage by quantities of use and fugacity calculations. Chemosphere 54, 355–367.
Lyman, W. J., R. G. Potts, and G. C. Magil. (1983). CHEMEST: User’s Guide; a Program
for Chemical Property Estimation. Cambridge: AD Little Inc.
Lyman, W.J., Reehl, W.F., and Rosenblatt, D.H. (1990). Handbook of Chemical Property
Estimation Methods. Washington, D.C.: American Chemical Society.
Mackay, D. (2001). Multimedia Environmental Models: The Fugacity Approach. Boca
Raton: CRC Press.
Mackay, D., and Boethling, R.S. (2000). Handbook of Property Estimation Methods for
Chemicals: Environmental Health Sciences Boca Raton: CRC Press.
Mackay, D., Shiu, W.Y., and Ma, K.-C. (1997). Illustrated Handbook of Physical-Chemical
Properties and Environmental Fate for Organic Chemicals, Volume V - Pesticide
Chemicals. Boca Raton: CRC Press.
Mauriello, D.A., and Park, R.A. (2002). An Adaptive Framework for Ecological Assessment
and Management. International Congress on Environmental Modelling and
Software. 5. Lugano, Switzerland: Brigham Young University Scholars Archive.
Metcalf, R.L., Sangha, G.K., and Kapoor, I.P. (1971). Model ecosystem for the evaluation of pesticide biodegradability and ecological magnifcation. Environ. Sci.
Technol. 5, 709–713.
Ross, L.J., Johnson, B., Kim, K., and Hsu, J. (1996). Prediction of methyl bromide fux
from area sources using the ISCST model. J. Environ. Q. 25, 885–891.
Schaffner, I., Wieck, J.M., Wright, C.F., Katz, M., and Pickering, E. (1998). Microbial
Enumeration and Laboratory-Scale Microcosm Studies in Assessing Enhanced
Bioremediation Potential of Petroleum Hydrocarbons. In the 11th Annual Conference
on Contaminated Soils, University Massachusetts at Amherst.
Schwarzenbach, R.P., Gschwend, P.M., and Imboden, D.M. (2002). Environmental
Organic Chemistry. Hoboken, NJ: Wiley-Interscience, p. 947.
Seiber, J.N., McChesney, M.M., and Woodrow, J.E. (1989). Airborne residues resulting from use of methyl parathion, molinate and thiobencarb on rice in the
Sacramento Valley, California. Environ. Toxicol. Chem. Int. J. 8, 577–588.
Spivak, A.C., Vanni, M.J., and Mette, E.M. (2011). Moving on up: can results from
simple aquatic mesocosm experiments be applied across broad spatial scales?
Freshw. Biol. 56, 279–291.
Environmental Fate Models
Han, Y., Kuo, M.T., Tseng, I., and Lu, C. (2007). Semicontinuous microcosm study of
aerobic cometabolism of trichloroethylene using toluene. J. Hazard. Mater. 148,
583–591.
Irwin, J.S. (1998). A Comparison of CALPUFF modeling results with 1977 INEL
feld data results. In Air Pollution Modeling and Its Application XII. (pp. 143–153).
Boston, MA: Springer.
Jittra, N., Pinthong, N., and Thepanondh, S. (2015). Performance evaluation of
AERMOD and CALPUFF air dispersion models in industrial complex area. Air
Soil Water Res. 8, ASWR-S32781.
Johnson, M., Isakov, V., Touma, J., Mukerjee, S., and Özkaynak, H. (2010). Evaluation
of land-use regression models used to predict air quality concentrations in an
urban area. Atmos. Environ. 44, 3660–3668.
Katharios, P., Seth-Smith, H.M., Fehr, A., Mateos, J.M., Qi, W., Richter, D., Nufer, L.,
Ruetten, M., Soto, M.G., and Ziegler, U. (2015). Environmental marine pathogen
isolation using mesocosm culture of sharpsnout seabream: striking genomic
and morphological features of novel Endozoicomonas sp. Sci. Rep. 5, 1–13.
Khan, S.J., and Ongerth, J.E. (2004). Modelling of pharmaceutical residues in Australian
sewage by quantities of use and fugacity calculations. Chemosphere 54, 355–367.
Lyman, W. J., R. G. Potts, and G. C. Magil. (1983). CHEMEST: User’s Guide; a Program
for Chemical Property Estimation. Cambridge: AD Little Inc.
Lyman, W.J., Reehl, W.F., and Rosenblatt, D.H. (1990). Handbook of Chemical Property
Estimation Methods. Washington, D.C.: American Chemical Society.
Mackay, D. (2001). Multimedia Environmental Models: The Fugacity Approach. Boca
Raton: CRC Press.
Mackay, D., and Boethling, R.S. (2000). Handbook of Property Estimation Methods for
Chemicals: Environmental Health Sciences Boca Raton: CRC Press.
Mackay, D., Shiu, W.Y., and Ma, K.-C. (1997). Illustrated Handbook of Physical-Chemical
Properties and Environmental Fate for Organic Chemicals, Volume V - Pesticide
Chemicals. Boca Raton: CRC Press.
Mauriello, D.A., and Park, R.A. (2002). An Adaptive Framework for Ecological Assessment
and Management. International Congress on Environmental Modelling and
Software. 5. Lugano, Switzerland: Brigham Young University Scholars Archive.
Metcalf, R.L., Sangha, G.K., and Kapoor, I.P. (1971). Model ecosystem for the evaluation of pesticide biodegradability and ecological magnifcation. Environ. Sci.
Technol. 5, 709–713.
Ross, L.J., Johnson, B., Kim, K., and Hsu, J. (1996). Prediction of methyl bromide fux
from area sources using the ISCST model. J. Environ. Q. 25, 885–891.
Schaffner, I., Wieck, J.M., Wright, C.F., Katz, M., and Pickering, E. (1998). Microbial
Enumeration and Laboratory-Scale Microcosm Studies in Assessing Enhanced
Bioremediation Potential of Petroleum Hydrocarbons. In the 11th Annual Conference
on Contaminated Soils, University Massachusetts at Amherst.
Schwarzenbach, R.P., Gschwend, P.M., and Imboden, D.M. (2002). Environmental
Organic Chemistry. Hoboken, NJ: Wiley-Interscience, p. 947.
Seiber, J.N., McChesney, M.M., and Woodrow, J.E. (1989). Airborne residues resulting from use of methyl parathion, molinate and thiobencarb on rice in the
Sacramento Valley, California. Environ. Toxicol. Chem. Int. J. 8, 577–588.
Spivak, A.C., Vanni, M.J., and Mette, E.M. (2011). Moving on up: can results from
simple aquatic mesocosm experiments be applied across broad spatial scales?
Freshw. Biol. 56, 279–291.
