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Reaction & Separation

Removal of Cr(VI) from water by granular activated carbon supported nanoscale zero-valent iron

  • Jian LIU Li HUANG Gang PENG Zhengji YI
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  • Key Laboratory of Functional Metal?Organic Compounds of Hunan Province, Hengyang Normal University, Hengyang, Hunan 421008, China

Received date: 2018-09-28

  Revised date: 2019-01-03

  Online published: 2019-08-15

Abstract

The removal rate of Cr(VI) from water by using granular activated carbon (GAC) supported nanoscale zero-valent iron (nZVI) composites (GAC-nZVI) was studied through batch experiments. The GAC-nZVI composites were synthesized from Fe2+ aqueous solution by traditional liquid-phase reduction technique with NaBH4 as a reducing agent. The composites were characterized by SEM. The effects of pH value, reaction temperature, GAC-nZVI composites addition and initial Cr(VI) concentration on the removal rate of Cr(VI) were studied. The removal processes were analyzed by a pseudo first-order kinetic model. The results showed that granular activated carbon supports could effectively prevent nanoscale zero-valent iron particles from aggregating together. Synthesized GAC-nZVI composites was efficient in removing Cr(VI) from water, 99.4% of Cr(VI) was removed from water containing 50 mg/L Cr(VI) within 5 min using 3.0 g/L GAC-nZVI composites at pH 2.0 and 40℃. The total Cr concentration in treated water was below 1 mg/L at pH 2.0?4.0, suggesting that little Cr(III) was residue. When pH was 1.0, the removal rate of Cr(VI) reached 98.8% within 2 min, but the total Cr concentration in water after reaction was 32.506 mg/L. The removal rate of Cr(VI) decreased with the increase of pH value and initial Cr(VI) concentration, and increased with the increase of reaction temperature and GAC-nZVI composites addition. Pseudo first-order kinetic model was suitable for describing the removal process of Cr(VI), and the fitting correlation coefficients R2 were all over 0.98 (except R2=0.9367 with GAC, R2=0.9277 when pH=3.0). The reaction rate constant (k) of GAC-nZVI composites was 0.19797 min?1, it was 86 times of original granular activated carbon (0.0023 min?1) at the same experimental conditions. The reaction rate constant increased with decreasing the initial pH value or increasing the reaction temperature and GAC-nZVI composites addition.

Cite this article

Jian LIU Li HUANG Gang PENG Zhengji YI . Removal of Cr(VI) from water by granular activated carbon supported nanoscale zero-valent iron[J]. The Chinese Journal of Process Engineering, 2019 , 19(4) : 714 -720 . DOI: 10.12034/j.issn.1009-606X.218294

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