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Study of Ni(II) removal by olive tree pruning and pine cone shell by experimental design methodology

机译:实验设计方法研究橄榄树修剪和松果皮去除镍(II)

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The overall objective of this study is to model and optimize the elimination of nickel ions from aqueous solutions by pine cone shell and olive tree pruning as biosorbents. A 3(3) full factorial design was employed for experimental design and analysis of the results. The flow rate (4-8mL/min), the mass of biosorbent (5-15g), and the initial Ni(II) concentration (10-100ppm) were the critical variables of the removal optimized. The results have shown that initial concentration of Ni(II) is the most influential factor in biosorption capacity as much as in total nickel removal. The optimum flow rate, mass of biosorbent, and initial concentration of Ni(II) to obtain the maximum total nickel removal coincided with both biosorbents and were found to be 6mL/min, 15g, and 10ppm. Meanwhile, to maximize the biosorption capacity, the optimum flow rate, mass of biosorbent, and initial concentration of Ni(II), were 8mL/min, 5g, and 100ppm for olive tree pruning and 6mL/min, 15g, and 100ppm for pine cone shell. The experimental breakthrough curves obtained under optimum conditions were modeled using Bohart-Adams, Thomas, Yoon-Nelson, and Dose-Response models. The last one is the model that best reproduced the total breakthrough curves.
机译:这项研究的总体目标是通过松果壳和橄榄树修剪作为生物吸附剂来模拟和优化从水溶液中消除镍离子的过程。 3(3)全因子设计用于实验设计和结果分析。流速(4-8mL / min),生物吸附剂的质量(5-15g)和初始Ni(II)浓度(10-100ppm)是优化去除的关键变量。结果表明,Ni(II)的初始浓度是影响生物吸附能力的最主要因素,而镍的去除总量也是如此。获得最大总镍去除量的最佳流速,生物吸附剂的质量和Ni(II)的初始浓度与两种生物吸附剂一致,结果分别为6mL / min,15g和10ppm。同时,为了最大程度地发挥生物吸附能力,橄榄树修剪的最佳流速,生物吸附剂质量和Ni(II)的初始浓度分别为8mL / min,5g和100ppm,对于松树修剪为6mL / min,15g和100ppm。锥壳。使用Bohart-Adams,Thomas,Yoon-Nelson和Dose-Response模型对在最佳条件下获得的实验突破曲线进行建模。最后一个是最能再现总突破曲线的模型。

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