Removing co-occurring contaminants of arsenic and vanadium with full-scale arsenic adsorptive media systems
Author:
Affiliation:
1. Office of Research and Development, U.S. Environmental Protection Agency, Cincinnati, OH 45268, USA
2. ALSA Tech, LLC, North Potomac, MD 20878, USA
3. Office of Water, U.S. Environmental Protection Agency, Washington DC 20460, USA
Abstract
Funder
U.S. Environmental Protection Agency
Publisher
IWA Publishing
Subject
Health, Toxicology and Mutagenesis,Water Science and Technology,Environmental Engineering
Link
http://iwaponline.com/aqua/article-pdf/doi/10.2166/aqua.2021.148/898448/jws2021148.pdf
Reference27 articles.
1. Intraparticle diffusion and adsorption of arsenate onto granular ferric hydroxide (GFH);Water Res.,2004
2. Battelle 2003 Quality Assurance Project Plan for Evaluation of Arsenic Removal Technology. Prepared under Contract No. EP-C-00-185. Task Order No. 0019 for U.S. Environmental Protection Agency, National Risk Management Research Laboratory, Cincinnati, OH.
3. Removing arsenic and co-occurring contaminants from drinking water by full-scale ion exchange and point-of-use/point-of-entry reverse osmosis systems;Water Res.,2019
4. Kinetics and mechanistic aspects of As(III) oxidation by aqueous chlorine, chloramines, and ozone; relevance to drinking water treatment;Environ. Sci. Technol.,2006
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1. Separation of vanadium, tungsten, and arsenic from alkaline leachate of spent SCR catalysts via coextraction and stepwise stripping;Separation and Purification Technology;2025-01
2. A two-sorbent system for fast uptake of arsenate from water: Batch and column studies;Water Research;2023-01
3. Vanadium removal from drinking water by fixed‐bed adsorption on granular ferric hydroxide;AWWA Water Science;2022-01
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