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砷酸盐在水中的吸附去除:案例对比研究。

Removal of arsenate from water by adsorbents: a comparative case study.

机构信息

International Environmental Research Center, Gwangju Institute of Science and Technology, South Korea.

出版信息

Environ Geochem Health. 2011 Jan;33 Suppl 1:133-41. doi: 10.1007/s10653-010-9349-z. Epub 2010 Nov 3.

DOI:10.1007/s10653-010-9349-z
PMID:21046433
Abstract

Laboratory and field filtration experiments were conducted to study the effectiveness of As(V) removal for five types of adsorbent media. The media included activated alumina (AA), modified activated alumina (MAA), granular ferric hydroxide (GFH), granular ferric oxide (GFO), and granular titanium dioxide (TiO₂). In laboratory batch and column experiments, the synthetic challenge water was used to evaluate the effectiveness for five adsorbents. The results of the batch experiments showed that the As(V) adsorption decreased as follows at pH 6.5: TiO₂ > GFO > GFH > MAA > AA. At pH 8.5, however, As(V) removal decreased in the following order: GFO = TiO₂ > GFH > MAA > AA. In column experiments, at pH 6.5, the adsorbed As(V) for adsorbents followed the order: TiO₂ > GFO > GFH, whereas at pH 8.5 the order became: GFO = TiO₂ > GFH when the challenge water containing 50 μg/L of As(V) was used. Field filtration experiments were carried out in parallel at a wellhead in New Jersey. Before the effluent arsenic concentration increased to 10 μg/L, approximately 58,000 and 41,500 bed volumes of groundwater containing an average of 47 μg/L of As(V) were treated by the filter system packed with GFO and TiO₂, respectively. The As(V) adsorption decreased in the following sequence: GFO > TiO₂ > GFH > MAA > AA. Filtration results demonstrated that GFO and TiO₂ adsorbents could be used as media in small community filtration systems for As(V) removal.

摘要

实验室和现场过滤实验用于研究五种吸附剂介质去除 As(V) 的效果。这些介质包括活性氧化铝 (AA)、改性活性氧化铝 (MAA)、颗粒状氢氧化铁 (GFH)、颗粒状氧化铁 (GFO) 和颗粒状二氧化钛 (TiO₂)。在实验室批量和柱实验中,使用合成挑战水来评估五种吸附剂的效果。批量实验的结果表明,在 pH 6.5 下,As(V) 的吸附顺序如下:TiO₂ > GFO > GFH > MAA > AA。然而,在 pH 8.5 时,As(V) 的去除顺序如下:GFO = TiO₂ > GFH > MAA > AA。在柱实验中,在 pH 6.5 时,吸附剂吸附的 As(V) 顺序为:TiO₂ > GFO > GFH,而在 pH 8.5 时,当使用含有 50μg/L As(V)的挑战水时,顺序变为:GFO = TiO₂ > GFH。现场过滤实验在新泽西州的一个井口平行进行。在出水砷浓度增加到 10μg/L 之前,分别用 GFO 和 TiO₂ 填充的过滤系统处理了约 58000 和 41500 床体积的含有平均 47μg/L As(V)的地下水。As(V) 的吸附顺序为:GFO > TiO₂ > GFH > MAA > AA。过滤结果表明,GFO 和 TiO₂ 吸附剂可用于去除 As(V) 的小型社区过滤系统中。

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本文引用的文献

1
Arsenic in groundwater in six districts of West Bengal, India.印度西孟加拉邦六个地区的地下水砷含量。
Environ Geochem Health. 1996 Mar;18(1):5-15. doi: 10.1007/BF01757214.
2
Arsenic leachability in water treatment adsorbents.水处理吸附剂中砷的浸出性
Environ Sci Technol. 2005 Jul 15;39(14):5481-7. doi: 10.1021/es050290p.
3
Removal of arsenic from groundwater by granular titanium dioxide adsorbent.颗粒状二氧化钛吸附剂去除地下水中的砷
Curr Environ Health Rep. 2017 Sep;4(3):373-382. doi: 10.1007/s40572-017-0157-9.
Chemosphere. 2005 Jul;60(3):389-97. doi: 10.1016/j.chemosphere.2004.12.008. Epub 2005 Jan 28.
4
Adsorption of As(V) and As(III) by nanocrystalline titanium dioxide.纳米晶二氧化钛对五价砷和三价砷的吸附作用
Water Res. 2005 Jun;39(11):2327-37. doi: 10.1016/j.watres.2005.04.006.
5
Removal of arsenic from water by zero-valent iron.用零价铁去除水中的砷。
J Hazard Mater. 2005 May 20;121(1-3):61-7. doi: 10.1016/j.jhazmat.2005.01.030.
6
Determination of surface properties of iron hydroxide-coated alumina adsorbent prepared for removal of arsenic from drinking water.用于去除饮用水中砷的氢氧化铁包覆氧化铝吸附剂的表面性质测定。
J Colloid Interface Sci. 2005 Apr 1;284(1):71-7. doi: 10.1016/j.jcis.2004.10.032.
7
Adsorption of arsenate and arsenite on titanium dioxide suspensions.砷酸盐和亚砷酸盐在二氧化钛悬浮液上的吸附作用。
J Colloid Interface Sci. 2004 Oct 15;278(2):270-5. doi: 10.1016/j.jcis.2004.06.015.
8
Intraparticle diffusion and adsorption of arsenate onto granular ferric hydroxide (GFH).颗粒内扩散以及砷酸盐在氢氧化铁颗粒(GFH)上的吸附作用。
Water Res. 2004 Nov;38(18):4002-12. doi: 10.1016/j.watres.2004.07.007.
9
Adsorption of arsenite and arsenate within activated alumina grains: equilibrium and kinetics.活性氧化铝颗粒对亚砷酸盐和砷酸盐的吸附:平衡与动力学
Water Res. 2001 Jun;35(8):2049-57. doi: 10.1016/s0043-1354(00)00467-x.
10
X-ray Absorption Spectroscopic Investigation of Arsenite and Arsenate Adsorption at the Aluminum Oxide-Water Interface.氧化铝-水界面上亚砷酸盐和砷酸盐吸附的X射线吸收光谱研究
J Colloid Interface Sci. 2001 Mar 1;235(1):80-88. doi: 10.1006/jcis.2000.7249.