Geoscience Reference
In-Depth Information
Smedley, P.L. & Kinniburgh, D.G.: A review of the source, behavior and distribution of arsenic in natural
waters. Appl. Geochem. 17:5 (2002), pp. 517-568.
Sracek, O., Bhattacharya, P., Jacks, G., Gustafsson, J.-P. & Brömssen, M.V.: Behavior of arsenic and
geochemical modeling of arsenic enrichment in aqueous environments. Appl. Geoch . 19:2 (2004),
pp. 169-180.
Stollenwerk, K.G.: Geochemical processes controlling transport of arsenic. In: A.H. Welch & K.G.
Stollenwerk (eds): Arsenic in groundwater . Kluwer, Boston, MA, 2003, pp. 67-100.
Stollenwerk, K.G., Breit, G.N., Welch, A.H., Yount, J.C., Whitney, J.W., Foster, A.L., Uddin, M.N., Majumder,
R.K. & Ahmed, N.: Arsenic attenuation by oxidized aquifer sediments in Bangladesh. Sci. Total Environ.
379:2-3 (2007), pp. 133-150.
Stuyfzand, P.J.: Hydrochemistry and hydrology of the coastal dune area of the Western Netherlands . PhD
Thesis, Vrije University Amsterdam, Amsterdam, The Netherlands, 1993.
Stuyfzand, P.J. & Timmer, H.: Deep well injection at the Langerak and Nieuwegein sites in the Netherlands:
chemical reactions and their modelling. KIWA-SWE 96.006, Nieuwegein, The Netherlands, 1999.
Stumm, W. & Morgan, J.J.: Aquatic chemistry . John Wiley - Interscience, New York, NY, 1996.
Stumm, W., Kummert, R. & Sigg, L.: A ligand exchange model for the adsorption of inorganic and organic
ligands at hydrous oxide interfaces. Croat. Chem. Acta 53 (1980), pp. 291-312.
Swedlund, P.J. & Webster, J.G.: Adsorption and polymerization of silicic acid on ferrihydrite and its effect
on arsenic adsorption. Water Res . 33 (1999), pp. 3413-3422.
Wang, H. & Anderson, M.: Introduction to groundwater modeling: finite difference and finite element
methods . Academic Press, San Diego, CA, 1982.
Wallis, I., Prommer, H., Simmons, C.T., Post, V. & Stuyfzand, P.J.: Evaluation of conceptual and numerical
models for arsenic mobilization and attenuation during managed aquifer recharge. Environ. Sci. Technol .
44:13 (2010), pp. 5035-5041.
Wallis, I., Prommer, H., Pichler, T., Post, V., Norton, S.B., Annable, M.B. & Simmons, C.T.: Process-based
reactive transport model to quantify arsenic mobility during aquifer storage and recovery of potable water.
Environ. Sci. Technol . 45:16 (2011), pp. 6924-6931.
Welch, A.H., Westjohn, D.B., Helsel, D.R. & Wanty, R.B.: Arsenic in ground water of the United States:
occurrence and geochemistry. Ground Water 38:4 (2000), pp. 589-604.
Williamson, M.A. & Rimstidt, J.D.: The kinetics and electrochemical rate-determining step of aqueous pyrite
oxidation. Geochim. Cosmochim. Acta 58:24 (1994), pp. 5443-5454.
Wolthers, M., Charlet, L., Van Der Weijden, C.H., Van Der Linde, P.R. & Rickard, D.: Arsenic mobility in
the ambient sulfidic environment: sorption of arsenic(V) and arsenic(III) onto disordered mackinawite.
Geochim. Cosmochim. Acta 69:14 (2005), pp. 3483-3492.
Yeh, G.T., Sharp-Hansen, S., Lester, B., Strobl R. & Scarbrough, J.: 3DFEMWATER/3DLEWASTE:
Numerical codes for delineating wellhead protection areas in agricultural regions based on the assimilative
capacity. US Environmental Protection Agency, Athens, GA, USA, 1992.
Zhang, Y.C., Slomp, C.P., Broers, H.P., Passier, H.F. & Van Cappellen, P.: Denitrification coupled to pyrite
oxidation and changes in groundwater quality in a shallow sandy aquifer. Geochim. Cosmochim. Acta
73:22 (2009), pp. 6716-6726.
Zheng, C. & Wang, P.P.: MT3DMS, A modular three-dimensional multi-species transport model for
simulation of advection, dispersion and chemical reactions of contaminants in groundwater systems;
documentation and user's guide. US Army Engineer Research and Development Center Contract Report
202, 1999.
Search WWH ::




Custom Search