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首页> 外文期刊>Journal of porous materials >Optimizing ammonium adsorption on natural zeolite for wastewaters with high loads of ammonium and solids
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Optimizing ammonium adsorption on natural zeolite for wastewaters with high loads of ammonium and solids

机译:天然沸石对高氨和高固体含量废水的氨吸附优化

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摘要

Ion exchange (IE) has been so far limited to treating waters and wastewaters low in solids (TS) and ammonium (NH4 (+)). This study provides a new insight into the application of IE for NH4 (+) removal from wastewaters with high NH4 (+) and TS, using natural zeolite as adsorbent medium. Assays were carried out in continuously stirred batch reactors to study the effect of initial NH4 (+), pH, TS, contact time, and zeolite pore size (0.2-0.5 and 0.6-2.0 mm). Results confirmed the suitability of this zeolite to remove NH4 (+) from wastewater with high amounts of solids (up to 2%TS) and NH4 (+) (up to 2500 mgNH(4) (+)-N/L). Ammonium adsorption capacity (q (t) ) was faster with 0.2-0.5 mm size because of the greater specific surface area and shorter diffusion path than 0.6-2.0 mm zeolite. Both zeolites showed increasing q (t) with increasing initial NH4 (+) due to the higher driving force produced by higher concentrations. The process followed a pseudo-second order kinetic and was best described by the Freundlich isotherm. Varying the pH (6-8.5) of the wastewater had no effect on NH4 (+) removal capacity. In conclusion, this natural zeolite showed high affinity for NH4 (+) in wastewater with high loads of NH4 (+) and solids, returning a viable treatment method when other techniques are not applicable.
机译:迄今为止,离子交换(IE)仅限于处理固体含量(TS)和铵盐(NH4(+))低的水和废水。这项研究为使用天然沸石作为吸附剂,从工业废水中去除高NH4(+)和TS的IE中的NH4(+)去除提供了新的见识。在连续搅拌的间歇式反应器中进行测定,以研究初始NH4(+),pH,TS,接触时间和沸石孔径(0.2-0.5和0.6-2.0 mm)的影响。结果证实了这种沸石适用于从含大量固体(高达2%TS)和NH4(+)(高达2500 mgNH(4)(+)-N / L)的废水中去除NH4(+)。铵的吸附容量(q(t))在0.2-0.5 mm尺寸时更快,因为比表面积更大,扩散路径比0.6-2.0 mm沸石短。两种沸石都显示出随着初始NH4(+)的增加q(t)的增加,这归因于较高浓度产生的较高驱动力。该过程遵循伪二级动力学,并且最好用Freundlich等温线描述。改变废水的pH(6-8.5)对NH4(+)的去除能力没有影响。总之,这种天然沸石对废水中的NH4(+)和固体含量高,对NH4(+)具有很高的亲和力,在其他技术不适用时,这是一种可行的处理方法。

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