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1

F, Whitaker Ann, Clark-Ingram M, Hessler S. L, and George C. Marshall Space Flight Center., eds. Second Aerospace Environmental Technology Conference--executive summary: Summary of a conference held in Huntsville, Alabama, August 6-8, 1996. National Aeronautics and Space Administration, Marshall Space Flight Center, 1997.

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2

National Association of Corrosion Engineers. Evaluation of internal plastic coatings for corrosion control of tubular goods in an aqueous flowing environment. NACE, 1993.

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3

Edmunds, Paul. The performance of stabilized and unstabilized minestone in an aqueous environment with emphasis on its erosion resistance. Aston University. Department of Civil Engineering, 1993.

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4

National Association of Corrosion Engineers., ed. Standard test method: Evaluation of internal plastic coatings for corrosion control of tubular goods in an aqueous flowing environment. NACE, 2000.

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5

National Association of Corrosion Engineers., ed. NACE Standard Test Method: Evaluation of internal plastic coatings for corrosion control of tubular goods in an aqueous flowing environment. NACE, 2000.

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6

Olsen, Pernille. Environmental legislation Scotland: aqueous effluent. Centre for Environment & Business in Scotland, 1993.

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7

Haapoja, Terike, Dylan Gauthier, Marcus Coates, Maartje Korstanje, and Agnieszka Kurant. Aqueous earth. Edited by International Studio & Curatorial Program. International Studio & Curatorial Program (ISCP), 2017.

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8

N, Reddi Lakshmi, Singh Udai P, American Society of Civil Engineers. Environmental Engineering Division., and ASCE National Convention (1996 : Washington, D.C.), eds. Non-aqueous phase liquids (NAPLs) in subsurface environment: Assessment and remediation : proceedings of the specialty conference held in conjunction with the ASCE National Convention, Washington, D.C., November 12-14, 1996. American Society of Civil Engineers, 1996.

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9

Alexander, Mark, Alexandra Bertron, and Nele De Belie, eds. Performance of Cement-Based Materials in Aggressive Aqueous Environments. Springer Netherlands, 2013. http://dx.doi.org/10.1007/978-94-007-5413-3.

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10

Holmes, Tanya V. An examination of adipocere formation in aqueous vs. terrestrial environments. National University, 2012.

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11

Loop, Caroline M. Aqueous and precipitate chemistry of coal mine drainage water in alkaline environments. Pennsylvania State University, Graduate School, 2003.

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12

Wu, Chenguang. Dissolution of zirconium oxide films in high temperature aqueous LiOh and H3BO3 environments. National Library of Canada, 1994.

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13

Sharma, Yogesh C. A guide to the economic removal of metals from aqueous solutions. John Wiley & Sons, 2012.

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14

Elkin, Leslie R. Corrosion mechanisms and behavior of a P-130x Gr/6063 A1 composite in aqueous environments. Naval Postgraduate School, 1990.

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15

D, Price Joseph, Urdaneta José, and United States. Environmental Protection Agency. Chemical Emergency Preparedness and Prevention Office, eds. Technical background document for offsite consequence analysis for anhydrous ammonia, aqueous ammonia, chlorine, and sulfur dioxide. Chemical Emergency Preparedness and Prevention Office, U.S. Environmental Protection Agency, 1999.

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16

Arnold, Cedric Georges. Triorganotin compounds in natural waters and sediments: Aqueous speciation and sorption mechanisms. Swiss Federal Institute of Technology Zürich, 1998.

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17

Al-Masri, Mohammad Said. Radiochemical methods for the determination of some naturally occurring Alpha emitters in environmental aqueous samples. University of Salford, 1994.

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18

Interstate Technology and Regulatory Cooperation Work Group. DNAPLs/Chemical Oxidation Work Team. Dense non-aqueous phase liquids (DNAPLs): Review of emerging characterization and remediation technologies. ITRC, 2000.

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19

LeBeau, Scott. Closed loop aqueous cleaning of mechanical parts: Lockheed Martin Defense Systems, Pittsfield, Massachusetts. Toxics Use Reduction Institute, University of Massachusetts Lowell, 1996.

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20

Campbell, P. G. C. Literature review report: Possible means of evaluating the biological effects of sub-aqueous disposal of mine tailings. INRS-EAU, 1993.

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21

Alexander, Mark. Performance of Cement-Based Materials in Aggressive Aqueous Environments: State-of-the-Art Report, RILEM TC 211 - PAE. Springer Netherlands, 2013.

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22

Yudaev, Igor', Mariya Belickaya, Irina Gribust, Elena Nefed'eva, and Yuliya Daus. The use of electrochemically activated agents in crop production. INFRA-M Academic Publishing LLC., 2025. https://doi.org/10.12737/2186794.

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This monograph is devoted to the development and use of new effective plant protection products and stimulation of their growth and development, which have a comprehensive technological effect and environmental safety. Such products include electrochemically activated aqueous solutions and preparations based on the Bischofite mineral extracted in the Lower Volga region, obtained by treating the initial solutions with electric current. It is intended for students, engineers, and researchers involved in electrical engineering, in particular, the development of electrical activators and the imple
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23

Campbell, P. G. C. Literature review report: Possible means of evaluating the biological effects of sub-aqueous disposal of mine tailings : final report. British Columbia Acid Mine Drainage Task Force, 1993.

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24

Pittaway, P. The determination of alkyllead species and inorganic lead in aqueous environmental samples by: Selective extractions with GFAAS measurement. University of Wolverhampton, 1989.

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25

Yiacoumi, Sotira. Kinetics of metal ion adsorption from aqueous solutions: Models, algorithms, and applications. Kluwer Academic Publishers, 1995.

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26

Pontolillo, James. The search for reliable aqueous solubility (Sw) and octanol-water partition coefficient (Kow) data for hydrophobic organic compounds: DDT and DDE as a case study. U.S. Dept. of the Interior, U.S. Geological Survey, 2001.

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27

DeWild, John F. Determination of methyl mercury by aqueous phase ethylation, followed by gas chromatographic separation with cold vapor atomic fluorescence detection. U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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28

L, Olson Mark, Olund Shane D, and Geological Survey (U.S.), eds. Determination of methyl mercury by aqueous phase ethylation, followed by gas chromatographic separation with cold vapor atomic fluorescence detection. U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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29

Kingston, Jenny. The development of a passive sampling system for the determination of time-averaged concentrations of organic pollutants in aqueous environments. University of Portsmouth, School of Biological Sciences, 2002.

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30

Wood, Scott A. The aqueous geochemistry of arsenic: Final project report to the U.S. Bureau of Land Management and Barrick-Goldstrike. [publisher not identified], 1999.

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31

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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32

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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33

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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34

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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35

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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36

United States. Environmental Protection Agency. Office of Research and Development, ed. Environmental technology verification statement: Technology type: ultrasonic aqueous cleaning systems, application: cleaning printed circuit board stencils, technology name: SMarT sonic. U.S. Environmental Protection Agency, Office of Research and Development, 1999.

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37

Desborough, George A. Potential use of clinoptilolite-rich rocks for capture and retention of soluble lead in aqueous systems such as soils, contaminated drainages, and waste water. U.S. Dept. of the Interior, U.S. Geological Survey, 1996.

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38

United States. Environmental Protection Agency. Office of Science and Technology. Engineering and Analysis Division. and United States. Environmental Protection Agency., eds. Environmental assessment of proposed effluent limitations guidelines and standards for synthetic-based drilling fluids and other non-aqueous drilling fluids in the oil and gas extraction point source category. Office of Water, Office of Science and Technology, Engineering and Analysis Division, U.S. Environmental Protection Agency, 1999.

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39

United States. Environmental Protection Agency. Office of Science and Technology. Engineering and Analysis Division., ed. Environmental assessment of proposed effluent limitations guidelines and standards for synthetic-based drilling fluids and other non-aqueous drilling fluids in the oil and gas extraction point source category. Office of Water, Office of Science and Technology, Engineering and Analysis Division, U.S. Environmental Protection Agency, 1999.

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40

Dehghani, Mohammad Hadi, Rama Rao Karri, and Inderjeet Tyagi. Sustainable Technologies for Remediation of Emerging Pollutants from Aqueous Environment. Elsevier, 2023.

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41

Dehghani, Mohammad Hadi, Rama Rao Karri, and Inderjeet Tyagi. Sustainable Technologies for Remediation of Emerging Pollutants from Aqueous Environment. Elsevier, 2023.

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42

Kirchman, David L. The physical-chemical environment of microbes. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198789406.003.0003.

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Many physical-chemical properties affecting microbes are familiar to ecologists examining large organisms in our visible world. This chapter starts by reviewing the basics of these properties, such as the importance of water for microbes in soils and temperature in all environments. Another important property, pH, has direct effects on organisms and indirect effects via how hydrogen ions determine the chemical form of key molecules and compounds in nature. Oxygen content is also critical, as it is essential to the survival of all but a few eukaryotes. Light is used as an energy source by photo
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43

Aqueous environmental geochemistry. Prentice Hall, 1997.

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44

D. C.) ASCE National Convention (1996 : Washington and Bijay K. Panigrahi. Non-Aqueous Phase Liquids (Napls) in Subsurface Environment: Assessment and Remediation : Proceedings of the Specialty Conference Held in Conjunction With ... Convention, Washington, D.C., november. American Society of Civil Engineers, 1996.

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45

Aqueous Effluent (Environmental Legislation Scotland). Institute of Environmental Management, 1993.

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46

Bunker, Bruce C., and William H. Casey. The Aqueous Chemistry of Oxides. Oxford University Press, 2016. http://dx.doi.org/10.1093/oso/9780199384259.001.0001.

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The Aqueous Chemistry of Oxides is a single-volume text that encapsulates all of the critical issues associated with how oxide materials interact with aqueous solutions. It serves as a central reference for academics working with oxides in the contexts of geology, various types of inorganic chemistry, and materials science. The text also has utility for professionals working with industrial applications in which oxides are either prepared or must perform in aqueous environments. The volume is organized into five key sections. Part One features two introductory chapters, intended to introduce t
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47

Langmuir. Aqueous Environmental Geochem and Res Nav Pkg. Pearson Education, Limited, 2003.

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48

Performance Of Cementbased Materials In Aggressive Aqueous Environments. Springer, 2012.

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49

Chmielewska, Eva, ed. Environmental Zeolites and Aqueous Media: Examples of Practical Solutions. BENTHAM SCIENCE PUBLISHERS, 2014. http://dx.doi.org/10.2174/97816080593241140101.

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50

Replacing solvent cleaning with aqueous cleaning: Project summary. U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1994.

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