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Uranium Removal from Wastewater Using Mg(OH)_2-Impregnated Activated Carbon

机译:Mg(OH)_2浸渍活性炭去除废水中的铀

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Uranium wastewater treatment has been performed by adsorption method using Mg(OH)(2)-impregnated activated carbon. Research purposes are to determine (i) uptake capacity of the adsorption isotherm of uranium in Mg(OH)(2)-impregnated activated carbon, (ii) mathematical correlation of uranium (VI) adsorption rate, and (iii) effect of the impregnation ratio of adsorbent to uranium removal efficiency. Adsorbent was synthesized through several stages, i.e., pyrolysis of coconut shell (400 degrees C), chemical activation using NaOH, and impregnation process using varied solutions of MgCl2 (600 degrees C). The materials were characterized comprehensively using FTIR, BET, XRF, and XRD. The parameters studied in this research were adsorption temperature (T), average particle diameter of adsorbent (d), mass ratio of adsorbent to wastewater solution (r), and impregnation ratio of Mg(OH)(2)/activated carbon. The results shown that equilibrium data are well fitted with the Langmuir isotherm model with the maximum adsorption capacity about 85 mg/g at 303 K and dimensionless constant separation factor (RL) value about 0.7. The adsorption rate was increased by increasing the adsorption temperature, mass ratio of adsorbent to wastewater solution, and the decrease of particle diameter of adsorbent with mathematical equation of the uranium (VI) adsorption rate asln C C0 1/4 [85032: 11exp (-41981.03/RT)d- 0: 2176r0: 1925]t(2)In addition, the results also shown that increasing the impregnation ratio from 0.3 to 1.0 can increase the uranium removal efficiency up to 67.3%.
机译:铀废水已通过吸附法进行了处理,其中使用了Mg(OH)(2)浸渍的活性炭。研究目的是确定(i)在Mg(OH)(2)浸渍的活性炭中铀的吸附等温线的吸收能力,(ii)铀的数学相关性(VI)吸附速率以及(iii)浸渍的影响吸附剂与铀去除效率之比。吸附剂是通过几个阶段合成的,即椰子壳的热解(400摄氏度),使用NaOH的化学活化以及使用各种MgCl2溶液(600摄氏度)的浸渍过程。使用FTIR,BET,XRF和XRD对材料进行了全面表征。在这项研究中研究的参数是吸附温度(T),吸附剂的平均粒径(d),吸附剂与废水溶液的质量比(r)以及Mg(OH)(2)/活性炭的浸渍率。结果表明,平衡数据完全符合Langmuir等温模型,在303 K下的最大吸附容量约为85 mg / g,无因次常数分离系数(RL)值为0.7。通过提高吸附温度,吸附剂与废水的质量比以及降低吸附剂的粒径(通过铀(VI)吸附率的数学公式asln C C0 1/4 [85032:11exp(- 41981.03 / RT)d-0:2176r0:1925] t(2)此外,结果还表明,将浸渍比从0.3增加到1.0可以使除铀效率提高到67.3%。

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