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Removal of arsenic by pilot-scale vertical flow constructed wetland

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摘要 Four pilot-scale Vertical Flow Constructed Wetlands(VFCWs)filled with gravel and planted with Phragmites australis were operated for seven months in the field to study the efficiency of arsenic removal in contaminated wastewater.The average arsenic removal efficiency by the VFCWs was 52.0%±20.2%,52.9%±21.3%,and 40.3%±19.4%at the theoretical concentrations of 50µg/L(CW50),100µg/L(CW100),and 500µg/L(CW500)arsenic in the wastewater,respectively.The results also showed no significant differences in the removal efficiency for conventional contaminants(nitrogen,phosphorus,or chemical oxygen demand)between wastewater treatments that did or did not contain arsenic(P>0.05),except for phosphorus in CW500.The highest average monthly removal rate of arsenic occurred in August(55.9%–74.5%)and the lowest in November(7.8%–15.5%).The arsenic removal efficiency of each VFCW was positively correlated with temperature(P<0.05).Arsenic accumulated in both substrates and plants,with greater accumulation associated with increased arsenic concentrations in the influent.The maximum accumulated arsenic concentrations in the substrates and plants at the end of the experiment were 4.47 mg/kg and 281.9 mg/kg,respectively,both present in CW500.The translocation factor(TF)of arsenic in the reeds was less than 1,with most of the arsenic accumulating in the roots.The arsenic mass balance indicated that substrate accumulation contributed most to arsenic removal(19.9%–30.4%),with lower levels in plants(3.8%–9.5%).In summary,VFCWs are effective for the treatment of arsenic-containing wastewater.
出处 《Frontiers of Environmental Science & Engineering》 SCIE EI CSCD 2021年第4期351-363,共13页 环境科学与工程前沿(英文)
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  • 1Keith L H, Telliard W A. ES&T special report: priority pollutants I- a perspective view. Environmental Science and Technology, 1979, 13(4): 416-423.
  • 2Karagas M R, Tosteson T D, Blum J, Morris J S, Baron J A, Klaue B. Design of an epidemiologic study of drinking water arsenic exposure and skin and bladder cancer risk in a U.S. population. Environmental Health Perspectives, 1998, 106(Suppl 4): 1047- 1050.
  • 3Maier A, Schumann B L, Chang X Q, Talaska G, Puga A. Arsenic co-exposure potentiates benzo[a]pyrene genotoxicity. Mutation Research, 2002, 517(1-2): 101-111.
  • 4Atlas R M, Cemiglia C E. Bioremediation of petroleum pollutants.Bioscience, 1995,45(5):332-339.
  • 5Wilson S C, Jones K C. Bioremediation of soil contaminated with polynuclear aromatic hydrocarbons (PAHs): a review. Environ- mental Pollution, 1993, 81(3): 229-249.
  • 6Cemiglia C E, Heitkamp M A. Microbial degradation ofpolycyclic aromatic hydrocarbons in the aquatic environment. In: Varanasi U ed. Metabolism of Polycyclic Aromatic Hydrocarbons in the Aquatic Environment. Boca Raton: CRC Press, 1989.
  • 7Cemiglia C E. Biodegradation of polyeyclic aromatic hydrocarbons. Biodegradation, 1992, 3(2-3): 351-368.
  • 8Aitken M D, Stringfellow W T, Nagel R D, Kazunga Ch, Chen S H. Characteristics of phenanthrene-degrading bacteria isolated from soils contaminated with polycyclic aromatic hydrocarbons. Cana- dian Journal of Microbiology, 1998, 44(8): 743-752.
  • 9Potin O, Rafin C, Veignie E. Bioremediation of an aged polycyclic aromatic hydrocarbons (PAHs)-contaminated soil by filamentous fungi isolated from the soil. International Biodeterioration and Biodegradation, 2004, 54(1): 45 -52.
  • 10Juhasz A L, Naidu R. Bioremediation of high molecular weight polycyclic aromatic hydrocarbons: a review of the microbial degradation of benzo[a]pyrene. International Biodeterioration and Biodegradation, 2000, 45(1-2): 57-88.

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