Environmental Engineering Reference
In-Depth Information
205.
Garrabrants, A.C., Development and application of fundamental leaching property
protocols for evaluating inorganic release from wastes and soils, Masters thesis,
Rutgers, The State University of New Jersey, New Brunswick, NJ, 1998.
206.
Sanchez, F. et al., Environmental assessment of waste matrices contaminated with
arsenic, Journal of Hazardous Materials 96, 229, 2003.
207.
Sanchez, F. et al., Leaching of inorganic contaminants from cement-based waste
materials as a result of carbonation during intermittent wetting, Waste Management
22, 249, 2002.
208.
ASTM, Standard Test Method for Leaching Solid Waste in a Column Apparatus,
ASTM D 4874, American Society for Testing and Materials, West Conshohocken,
PA, 2001.
209.
NEN, Determination of the leaching of inorganic components from granular materials
with the column test, NEN 7343, Netherlands Normalisation Institute, Delft, The
Netherlands, 1995.
210.
Ludwig, C. et al., Hydrological and geochemical factors controlling the leaching of
cemented MSWI air pollution control residues: a lysimeter field study, Journal of
Contaminant Hydrology 42, 253, 2000.
211.
Shimaoka, T. and Hanashima, M., Behavior of stabilized fly ashes in solid waste
landfills, Waste Management 16, 545, 1996.
212.
Poon, C.S. and Chen, Z.Q., Comparison of the characteristics of flow-through and
flow-around leaching tests of solidified heavy metal wastes, Chemosphere 38, 663,
1999.
213.
Poon, C.S., Chen, Z.Q., and Wai, O.W.H., The effect of flow-through leaching on the
diffusivity of heavy metals in stabilized/solidified wastes, Journal of Hazardous
Materials 81, 179, 2001.
214.
Atkinson, A., Nelson, K., and Valentine, T.M., Leach test characterization of cement-
based nuclear waste forms, Nuclear and Chemical Waste Management , 6, 241-253,
1986.
215.
Moudilou, E. et al., A dynamic leaching method for the assessment of trace metals
released from hydraulic binders, Waste Management 22, 153, 2002.
216.
Crank, J., The Mathematics of Diffusion , 2nd ed., Oxford University Press, London,
UK, 1975.
217.
Barneyback, S., Jr. and Diamond, S., Expression and analysis of pore fluids from
hardened cement pastes and mortars, Cement and Concrete Research 11, 279, 1981.
218.
Duchesne, J. and Bérubé, M.A., Evaluation of the validity of the pore solution
expression method from hardened cement pastes and mortars, Cement and Concrete
Research 24, 456, 1994.
219.
Sahu, S. and Diamond, S., Pore solution chemistry of simulated low level liquid waste
incorporated cement grouts, Materials Research Society Symposium Proceedings,
Pittsburgh, PA, USA 412, Materials Research Society , 411, 1996.
220.
Constantiner, D. and Diamond, S., Pore solution analysis: are there pressure effects?,
in Mechanisms of Chemical Degradation of Cement-based Systems , Scrivener, K.L.
and Young, J.F., Eds., E&FN Spon, London, 1997, p. 22.
221.
Rivard, P. et al., Alkali mass balance during the accelerated concrete prism test for
alkali-aggregate reactivity, Cement and Concrete Research 33, 1147, 2003.
222.
de Groot, G.J. and van der Sloot, H.A., Determination of leaching characteristics of
waste materials leading to environmental product certification, in Solidification and
Stabilization of Hazardous, Radioactive, and Mixed Wastes, 2nd Volume, ASTM STP
1123 , Gilliam, T.M. and Wiles, C.C., Eds., American Society for Testing and Mate-
rials, Philadelphia, PA, 1992, p. 149.
Search WWH ::




Custom Search