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源自高炉矿渣的NaA沸石:其在去除铵方面的应用。

NaA zeolite derived from blast furnace slag: its application for ammonium removal.

作者信息

Guo Hongwei, Tang Lizhen, Yan Bingji, Wan Kang, Li Peng

机构信息

Shagang School of Iron and Steel, Soochow University, Suzhou 215021, China E-mail:

State Key Laboratory of Advanced Metallurgy, University of Science and Technology Beijing, Beijing 100083, China.

出版信息

Water Sci Technol. 2017 Sep;76(5-6):1140-1149. doi: 10.2166/wst.2017.294.

Abstract

In this paper, high value added NaA zeolite material was prepared from blast furnace (BF) slag by hydrothermal method and its adsorption behavior on the removal of ammonium ion was investigated. It was found out that the synthetic NaA cubic zeolite with smaller crystal size obtained at nSiO/nAlO = 2 and nHO/nNaOH = 20 showed better adsorption performance. The kinetics of the adsorption of ammonium ion by synthesized NaA zeolite was fitted by the pseudo-second-order kinetic model. The intra-particle diffusion modeling reveals that two mixed rate-controlling mechanisms were involved in the adsorption process. The relatively high value of activation energy of 92.3 kJ·mol indicates a high impact of temperature on the adsorption rate, and the nature of ammonium adsorption is chemical reaction rather than physisorption. Based on the thermodynamics calculations, the adsorption of ammonium was found to be an endothermic, spontaneous process. The adsorption isothermal analysis showed that the Langmuir model could be well fitted and a maximum adsorption capacity of 83.3 mg·g of NH was obtained. Thus, it was demonstrated that by forming low cost NaA zeolite and using it for environmental remediation, the synchronous minimization of BF slag and ammonia nitrogen contamination could be achieved.

摘要

本文采用水热法从高炉(BF)矿渣制备了高附加值的NaA沸石材料,并研究了其对铵离子的吸附行为。研究发现,在nSiO/nAlO = 2和nHO/nNaOH = 20条件下获得的晶体尺寸较小的合成NaA立方沸石表现出更好的吸附性能。合成的NaA沸石对铵离子的吸附动力学符合准二级动力学模型。颗粒内扩散模型表明,吸附过程涉及两种混合速率控制机制。92.3 kJ·mol的相对较高的活化能值表明温度对吸附速率有很大影响,铵吸附的本质是化学反应而非物理吸附。基于热力学计算,发现铵的吸附是一个吸热的自发过程。吸附等温线分析表明,Langmuir模型拟合良好,获得了83.3 mg·g的NH最大吸附容量。因此,证明了通过形成低成本的NaA沸石并将其用于环境修复,可以实现高炉矿渣和氨氮污染的同步最小化。

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