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1

D, Harter Robert, ed. Adsorption phenomena. New York: Van Nostrand Reinhold Co., 1986.

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2

Borggaard, Ole K. Dissolution and adsorption properties of soil iron oxides. Copenhagen: Chemistry Dept., Royal Veterinary and Agricultural University, 1990.

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3

S, Orlov D., and Rozanov B. G, eds. Opticheskie svoĭstva pochv i pochvennykh komponentov. Moskva: "Nauka", 1986.

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4

1930-, Jenne Everett A., ed. Adsorption of metals by geomedia: Variables, mechanisms, and model applications. San Diego: Academic Press, 1998.

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5

Abramovich, Kovda Viktor, ed. Analiz sostava vodnoĭ fazy pochv. Moskva: "Nauka", 1989.

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6

Westall, John C. The use of cationic surfactants to modify aquifer materials to reduce the mobility of hydrophobic organic compounds / John C. Westall ... [et al.]. Ada, OK: U.S. Environmental Protection Agency, Robert S. Kerr Environmental Research Laboratory, 1994.

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7

Westall, John C. The use of cationic surfactants to modify aquifer materials to reduce the mobility of hydrophobic organic compounds / John C. Westall ... [et al.]. Ada, OK: U.S. Environmental Protection Agency, Robert S. Kerr Environmental Research Laboratory, 1994.

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8

Sokołowska, Zofia. Rola niejednorodności powierzchni w procesach adsorpcji zachodzących na glebach. Wrocław: Zakład Narodowy im. Ossolińskich, 1989.

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9

Douglas, Gunnison, Pennington Judith C, Zappi Mark E, Teeter Cynthia L, Fredrickson Herbert L, United States. Army. Corps of Engineers., U.S. Army Engineer Waterways Experiment Station., Environmental Laboratory (U.S. Army Engineer Waterways Experiment Station), and Program Manager for Rocky Mountain Arsenal (Colo.), eds. Assessment of mechanisms impacting N-nitrosodimethylamine fate within the North Boundary Containment System, Rocky Mountain Arsenal. Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1997.

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10

Cogger, Craig G. Septic system waste treatment in soil. Pullman, Wash: Cooperative Extension, College of Agriculture & Home Economics, Washington State University, 1987.

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11

F, Hudson James. Forecasting onsite soil absorption system failure rates. Cincinnati, OH: U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1986.

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12

Farrell, Susan. Evaluation of color infrared aerial surveys of wastewater soil absorption systems. Cincinnati, OH: U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1985.

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13

Paul, Jamet, and Institut national de la recherche agronomique (France), eds. Methodological aspects of the study of pesticide behaviour in soil =: Aspects méthodologiques de l'étude du comportement des pesticides dans le sol : INRA, Versailles, June 16-17, 1988. Paris: Institut national de la recherche agronomique, 1989.

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14

Fosfatogennai͡a transformat͡sii͡a pochv. Moskva: Nauka, 1995.

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15

Lyon, William G. The swelling properties of soil organic matter and their relation to sorption of non-ionic organic compounds: Project summary. Ada, OK: U.S. Environmental Protection Agency, Robert S. Kerr Environmental Research Laboratory, 1991.

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16

Paul, Jamet, ed. Methodological aspects of the study of pesticide behaviour in soil =: Aspects methodologiques de l'etudé du comportement des pesticides dansle sol : INRA Versailles, June 16-17, 1988. Paris: INRA, 1994.

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17

Roger, Fujii, Deverel S. J, Geological Survey (U.S.), and San Joaquin Valley Drainage Program, eds. Evaluation of selenium mobility in soil using sorption experiments and a numerical model, western San Joaquin Valley, California. Sacramento, Calif: Dept. of the Interior, U.S. Geological Survey, 1990.

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18

Roger, Fujii, Deverel S. J, Geological Survey (U.S.), and San Joaquin Valley Drainage Program., eds. Evaluation of selenium mobility in soil using sorption experiments and a numerical model, western San Joaquin Valley, California. Sacramento, Calif: Dept. of the Interior, U.S. Geological Survey, 1990.

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19

1954-, Roy William R., United States. Environmental Protection Agency. Office of Solid Waste and Emergency Response, Risk Reduction Engineering Laboratory (U.S.), and Illinois State Geological Survey, eds. Technical resource document: Batch-type procedures for estimating soil adsorption of chemicals. Washington, D.C: Office of Solid Waste and Emergency Response, U.S. Environmental Protection Agency, 1992.

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20

Rachkova, N. G. Rolʹ sorbentov v prot︠s︡essakh transformat︠s︡ii soedineniĭ urana, radii︠a︡ i torii︠a︡ v podzolistoĭ pochve. Sankt-Peterburg: Nauka, 2006.

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21

Shenber, Mohamed Ahmed. Sorption behaviour of radiocaesium in soils from various regions of Libya and Sweden. Uppsala: Swedish University of Agricultural Sciences, Dept. of Radioecology, 1992.

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22

Barrow, N. J. Reactions with variable-charge soils. Dordrecht: M. Nijhoff, 1987.

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23

Christensen, Thomas H. Cadmium soil sorption at low concentrations. [Lyngby, Denmark]: Polyteknisk forlag, 1989.

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24

Fu, Jaw-Kwei. Pollutant sorption to soils and sediments in organic/aqueous solvent systems. Athens, GA: U.S. Environmental Protection Agency, Environmental Research Laboratory, 1985.

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25

Fu, Jaw-Kwei. Pollutant sorption to soils and sediments in organic/aqueous solvent systems. Athens, GA: U.S. Environmental Protection Agency, Environmental Research Laboratory, 1985.

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26

Vandenberg, A. A physical model of vertical integration, drain discharge, and surface runoff for layered soils. Saskatoon, Sask: National Hydrology Research Institute, 1989.

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27

Schätzung der Bodenwasserspeicherkapazität durch Simulation der genutzten Dornbuschsavanne in Namibia. Stuttgart: Steiner, 2003.

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28

forurensningstilsyn, Norway Statens, ed. Veiledning ved bygging og drift av større jordrenseanlegg. København: Nordisk ministerråd, 1988.

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29

Piwoni, M. D. Basic concepts of contaminant sorption at hazardous waste sites. [Ada, OK]: U.S. Environmental Protection Agency, Office of Research and Development, 1991.

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30

Sheppard, M. I. Soil sorption of iodine: Effects of pH and enzymes. Pinawa, Man: Whiteshell Laboratories, 1997.

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31

J, Vepraskas Michael, and Water Resources Research Institute of the University of North Carolina., eds. Predicting long-term wetland hydrology from hydric soil field indicators. Raleigh, N.C: Water Resources Research Institute of the University of North Carolina, 2002.

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32

Foundation, AWWA Research, American Water Works Association, and IWA Publishing, eds. Water residuals to reduce soil phosphorous. Denver, CO: AWWA Research Foundation/American Water Works Association/IWA Pub., 2006.

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33

Risk Reduction Engineering Laboratory (U.S.), ed. Migration of hazardous substances through soils: Project summary. Cincinnati, OH: U.S. Environmental Protection Agency, Risk Reduction Engineering Laboratory, 1991.

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34

Rattray, Gordon W. Adsorption of sulfur hexafluoride onto crushed tuffs from the Yucca Mountain area, Nye County, Nevada. Denver, Colo: U.S. Dept. of the Interior, U.S. Geological Survey, 1995.

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35

Siegrist, Robert L. Large soil absorption systems for wastewaters from multiple-home developments. Cincinnati, OH: U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1986.

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36

Myers, Tommy E. Application of a semianalytical model to TNT transport in laboratory soil columns. Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1998.

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37

Chappell, Mark A. Environmental chemistry of explosives and propellant compounds in soils and marine systems: Distributed source characterization and remedial technologies. Edited by American Chemical Society. Division of Environmental Chemistry. Washington, DC: American Chemical Society, 2011.

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38

Huddleston, J. H. How soil properties affect groundwater vulnerability to pesticide contamination. [Corvallis, Or.]: Oregon State University Extension Service, 1994.

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39

Hargett, David L. Technical assessment of low-pressure pipe wastewater injection systems. Cincinnati, OH: U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1987.

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40

Agency, OECD Nuclear Energy. Radiunuclide sorption from the safety evaluation perspective =: La sorption des radionucléides du point de vue de l'évaluation de la sûreté. Paris: Nuclear Energy Agency, Organisation for Economic Co-Operation and Development, 1992.

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41

Agency, OECD Nuclear Energy, and Nationale Genossenschaft für die Lagerung Radioaktiver Abfälle (Switzerland), eds. Radionuclide sorption from the safety evaluation perspective: Proceedings of an NEA Workshop, Interlaken, Switzerland, 16-18 October 1991. Paris: Nuclear Energy Agency, Organisation for Economic Co-operation and Development, 1992.

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42

Environmental soil and water chemistry: Principles and applications. New York: Wiley, 1998.

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43

Competitive sorption and transport of heavy metals in soils and geological media. Boca Raton: Taylor & Francis, 2012.

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44

Lowe, Mike. Guidelines for preparing hydrogeologic and soil reports addressing suitability for alternative wastewater disposal systems in Weber County, Utah. [Salt Lake City]: Utah Dept. of Natural Resources, Utah Geological Survey, 1999.

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45

Papelis, Charalambos. Evaluation of cobalt mobility in soils from the Nevada Test Site. Reno, Nev: University and Community College System of Nevada, Water Resources Center, 1996.

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46

Olin, Trudy J. 2,4,6-Trinitrotoluene (TNT) transformation/sorption in thin-disk soil columns under anaerobic conditions. [Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1996.

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47

Bradbury, Michael H. Far-field sorption data bases for performance assessment of a L/ILW repository in a disturbed/altered Palfris marl host rock. Würenlingen: Paul Scherrer Institut, 1997.

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48

Bradbury, Michael H. Far-field sorption data bases for performance assessment of a L/ILW repository in an undisturbed Palfris marl host rock. Würenlingen: Paul Scherrer Institut, 1997.

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49

Price, Cynthia B. Transformation of RDX and HMX under controlled Eh/pH conditions. Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1998.

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50

Selim, Hussein Magd Eldin. Sorption-desorption and transport of TNT and RDX in soils. [Hanover, N.H.]: U.S. Army Corps of Engineers, Cold Regions Research & Engineering Laboratory, 1994.

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