
AbstractArsenic is among the major drinking water contaminants affecting populations in many countries because it causes serious health problems on long-term exposure. Two low-cost micro-sized iron oxyhydroxide-based adsorbents (which are by-products of the industrial production process of granular adsorbents), namely, micro granular ferric hydroxide (μGFH) and micro tetravalent manganese feroxyhyte (μTMF), were applied in batch adsorption kinetic tests and submerged microfiltration membrane adsorption hybrid system (SMAHS) to remove pentavalent arsenic (As(V)) from modeled drinking water. The adsorbents media were characterized in terms of iron content, BET surface area, pore volume, and particle size. The results of adsorption kinetics show that initial adsorption rate of As(V) by μTMF is faster than μGFH. The SMAHS results revealed that hydraulic residence time of As(V) in the slurry reactor plays a critical role. At longer residence time, the achieved adsorption capacities at As(V) permeate concentration of 10 μg/L (WHO guideline value) are 0.95 and 1.04 μg/mg for μGFH and μTMF, respectively. At shorter residence time of ~ 3 h, μTMF was able to treat 1.4 times more volumes of arsenic-polluted water than μGFH under the optimized experimental conditions due to its fast kinetic behavior. The outcomes of this study confirm that micro-sized iron oyxhydroxides, by-products of conventional adsorbent production processes, can successfully be employed in the proposed hybrid water treatment system to achieve drinking water guideline value for arsenic, without considerable fouling of the porous membrane.
Drinking Water, Hydrogen-Ion Concentration, Ferric Compounds, Arsenic, Water Purification, Arsenates, Adsorption, Recent Developments and Innovative Strategies in Environmental Sciences in Europe, Water Pollutants, Chemical/analysis [MeSH] ; Recent Developments and Innovative Strategies in Environmental Sciences in Europe ; Micro-sized iron oxyhydroxides ; Arsenic/analysis [MeSH] ; Water Purification [MeSH] ; Drinking Water [MeSH] ; Arsenates [MeSH] ; Drinking water production ; Arsenic removal ; Hydrogen-Ion Concentration [MeSH] ; Submerged membrane adsorption hybrid system ; Granular ferric hydroxide ; Ferric Compounds [MeSH] ; Adsorption kinetics ; Waste utilization ; Adsorption [MeSH], Water Pollutants, Chemical
Drinking Water, Hydrogen-Ion Concentration, Ferric Compounds, Arsenic, Water Purification, Arsenates, Adsorption, Recent Developments and Innovative Strategies in Environmental Sciences in Europe, Water Pollutants, Chemical/analysis [MeSH] ; Recent Developments and Innovative Strategies in Environmental Sciences in Europe ; Micro-sized iron oxyhydroxides ; Arsenic/analysis [MeSH] ; Water Purification [MeSH] ; Drinking Water [MeSH] ; Arsenates [MeSH] ; Drinking water production ; Arsenic removal ; Hydrogen-Ion Concentration [MeSH] ; Submerged membrane adsorption hybrid system ; Granular ferric hydroxide ; Ferric Compounds [MeSH] ; Adsorption kinetics ; Waste utilization ; Adsorption [MeSH], Water Pollutants, Chemical
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