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通过吸附到各种材料上从水溶液中去除硝酸盐。

Nitrate removal from aqueous solution by adsorption onto various materials.

作者信息

Oztürk Neşe, Bektaş T Ennil

机构信息

Osmangazi Universitesi, Mühendislik-Mimarlik Fakültesi Kimya Mühendisliği Bölümü, 26480 Meşelik, Eskişehir, Turkey.

出版信息

J Hazard Mater. 2004 Aug 9;112(1-2):155-62. doi: 10.1016/j.jhazmat.2004.05.001.

DOI:10.1016/j.jhazmat.2004.05.001
PMID:15225942
Abstract

In this study sepiolite, sepiolite activated by HCl, slag and powdered activated carbon were used as adsorbent with a particle size was between 71 and 80 microm (200-170 mesh). NaNO3 solution (100 mg/l) was used in batch adsorption experiments for nitrate removal. First kinetic studies were carried out and it was determined that slag was not effective for nitrate removal, then contact time, pH and adsorbent dosage effects on nitrate removal by adsorption were investigated using other adsorbents except slag. The equilibrium time was found to be 30, 45, 5 min for sepiolite, powdered activated carbon and activated sepiolite, respectively. The most effective pH value for nitrate removal was 2 for powdered activated carbon. pH value did not affect nitrate removal significantly for other adsorbents. Adsorbent dosages were varied from 5 to 20 g/l solutions. An increase in adsorbent dosage increased the percent removal of nitrate. A series of isotherm studies were undertaken and the data evaluated for compliance with the Langmuir and Freundlich isotherm models. To investigate the adsorption mechanisms, three simplified kinetic models, i.e., first-, second-order and intraparticle diffusion were tested. Adsorption followed second-order rate kinetics. The correlation coefficients for second order kinetic model are greater than 0.996. Experimental data show that sepiolite activated by HCl was effective for nitrate removal.

摘要

在本研究中,海泡石、盐酸活化海泡石、炉渣和粉末活性炭被用作吸附剂,其粒径在71至80微米(200-170目)之间。使用NaNO₃溶液(100毫克/升)进行批量吸附实验以去除硝酸盐。首先进行了动力学研究,确定炉渣对硝酸盐去除无效,然后使用除炉渣外的其他吸附剂研究了接触时间、pH值和吸附剂用量对硝酸盐吸附去除的影响。发现海泡石、粉末活性炭和活化海泡石的平衡时间分别为30、45、5分钟。粉末活性炭去除硝酸盐最有效的pH值为2。pH值对其他吸附剂的硝酸盐去除没有显著影响。吸附剂用量在5至20克/升溶液之间变化。吸附剂用量的增加提高了硝酸盐的去除率。进行了一系列等温线研究,并对数据进行评估以符合朗缪尔和弗伦德利希等温线模型。为了研究吸附机制,测试了三种简化的动力学模型,即一级、二级和颗粒内扩散模型。吸附遵循二级速率动力学。二级动力学模型的相关系数大于0.996。实验数据表明,盐酸活化海泡石对硝酸盐去除有效。

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