Evaluation of Silicate Minerals for pH Control During Bioremediation: Application to Chlorinated Solvents

Author:

Lacroix Elsa,Brovelli Alessandro,Holliger Christof,Barry D. A.

Publisher

Springer Science and Business Media LLC

Subject

Pollution,Water Science and Technology,Ecological Modelling,Environmental Chemistry,Environmental Engineering

Reference91 articles.

1. Aagaard, P., & Helgeson, H. C. (1982). Thermodynamic and kinetic constraints on reaction-rates among minerals and aqueous solutions; I. Theoretical considerations. American Journal of Science, 282(3), 237–285. doi: 10.2475/ajs.282.3.237 .

2. Adamson, D. T., Lyon, D. Y., & Hughes, J. B. (2004). Flux and product distribution during biological treatment of tetrachloroethene dense non-aqueous-phase liquid. Environmental Science & Technology, 38(7), 2021–2028. doi: 10.1021/es034737a .

3. AFCEE. (2004). Principles and practices of enhanced anaerobic bioremediation of chlorinated solvents. Washington: US Department of defense, Air Force Center for Environmental Excellence and the Environmental Security Technology Certification Program (ESTCP).

4. Alkattan, M., Oelkers, E. H., Dandurand, J. L., & Schott, J. (1998). An experimental study of calcite and limestone dissolution rates as a function of pH from −1 to 3 and temperature from 25 to 80°C. Chemical Geology, 151(1–4), 199–214. doi: 10.1016/s0009-2541(98)00080-1 .

5. Allison, J. D., Brown, D. S., & Novo-Gradac, K. J. (1991). MINTEQA2/PRODEF2—a geochemical assessment model for environmental systems: version 4.0. User’s manual. Environmental Research Laboratory, Office of Research and Development, U.S. Environmental Protection Agency, Athens, Georgia.

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