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Branched pore kinetic model analysis of geosmin adsorption on super-powdered activated carbon

机译:土工素在超粉状活性炭上吸附的分支孔隙动力学模型分析

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摘要

Super-powdered activated carbon (S-PAC) is activated carbon of much finer particle size than powdered activated carbon (PAC). Geosmin is a naturally occurring taste and odor compound that impairs aesthetic quality in drinking water. Experiments on geosmin adsorption on S-PAC and PAC were conducted, and the results using adsorption kinetic models were analyzed. PAC pulverization, which produced the S-PAC, did not change geosmin adsorption capacity, and geosmin adsorption capacities did not differ between S-PAC and PAC. Geosmin adsorption kinetics, however, were much higher on S-PAC than on PAC. A solution to the branched pore kinetic model (BPKM) was developed, and experimental adsorption kinetic data were analyzed by BPKM and by a homogeneous surface diffusion model (HSDM). The HSDM describing the adsorption behavior of geosmin required different surface diffusivity values for S-PAC and PAC, which indicated a decrease in surface diffusivity apparently associated with activated carbon particle size. The BPKM, consisting of macropore diffusion followed by mass transfer from macropore to micropore, successfully described the batch adsorption kinetics on S-PAC and PAC with the same set of model parameter values, including surface diffusivity. The BPKM simulation clearly showed geosmin removal was improved as activated carbon particle size decreased. The simulation also implied that the rate-determining step in overall mass transfer shifted from intraparticle radial diffusion in macropores to local mass transfer from macropore to micropore. Sensitivity analysis showed that adsorptive removal of geosmin improved with decrease in activated carbon particle size down to 1 nm, but further particle size reduction produced little improvement.
机译:超粉状活性炭(S-PAC)是比粉状活性炭(PAC)粒度更细的活性炭。土臭素是一种天然的味道和气味化合物,会损害饮用水的美学品质。进行了土工胺在S-PAC和PAC上的吸附实验,并利用吸附动力学模型对结果进行了分析。产生S-PAC的PAC粉碎不会改变土臭素的吸附能力,并且S-PAC和PAC之间的土臭素吸附能力没有差异。然而,S-PAC上的土工素吸附动力学要比PAC高得多。开发了支化孔隙动力学模型(BPKM)的解决方案,并通过BPKM和均相表面扩散模型(HSDM)分析了实验吸附动力学数据。用于描述土臭素吸附行为的HSDM对于S-PAC和PAC需要不同的表面扩散率值,这表明表面扩散率的降低显然与活性炭粒径有关。 BPKM由大孔扩散,然后从大孔向微孔的质量转移组成,成功地描述了S-PAC和PAC在同一组模型参数值(包括表面扩散率)下的间歇吸附动力学。 BPKM模拟清楚地表明,随着活性炭粒径的减小,土臭素的去除率得到了提高。该模拟还暗示总体传质的速率确定步骤从大孔中的颗粒内径向扩散转移到从大孔到微孔的局部传质。敏感性分析表明,随着活性炭粒径低至1 nm的减小,吸附性去除土臭素的能力得到改善,但进一步减小粒径几乎没有改善。

著录项

  • 来源
    《Water Research》 |2009年第12期|3095-3103|共9页
  • 作者单位

    Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628, Japan;

    Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628, Japan;

    Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628, Japan;

    Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628, Japan;

    Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    PAC; particle size; submicron; HSDM; taste and odor;

    机译:PAC;粒度亚微米HSDM;味道和气味;
  • 入库时间 2022-08-17 13:51:05

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