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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Neural fuzzy modelization of copper removal from water by biosorption in fixed-bed columns using olive stone and pinion shell
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Neural fuzzy modelization of copper removal from water by biosorption in fixed-bed columns using olive stone and pinion shell

机译:使用橄榄石和小齿轮壳通过生物吸附在水中铜中除去的神经模糊建模化

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摘要

Continuous copper biosorption in fixed-bed column by olive stone and pinion shell was studied. The effect of three operational parameters was analyzed: feed flow rate (2-6 ml/min), inlet copper concentration (40-100 mg/L) and bed-height (4.4-13.4 cm). Artificial Neural-Fuzzy Inference System (ANFIS) was used in order to optimize the percentage of copper removal and the retention capacity in the column. The highest percentage of copper retained was achieved at 2 ml/min, 40 mg/L and 4.4 cm. However, the optimum biosorption capacity was obtained at 6 ml/min, 100 mg/L and 13.4 cm. Finally, breakthrough curves were simulated with mathematical traditional models and ANFIS model. The calculated results obtained with each model were compared with experimental data. The best results were given by ANFIS modelling that predicted copper biosorption with high accuracy. Breakthrough curves surfaces, which enable the visualization of the behavior of the system in different process conditions, were represented.
机译:研究了橄榄石和小齿轮壳固定床柱中连续铜生物吸附。分析了三种操作参数的效果:进料流速(2-6ml / min),入口铜浓度(40-100mg / L)和床高(4.4-13.4cm)。使用人工神经模糊推理系统(ANFIS)以优化铜覆盖的百分比和柱子中的保持能力。保留的最高含量含量为2mL / min,40mg / L和4.4cm。然而,在6ml / min,100mg / L和13.4cm下获得最佳的生物吸收能力。最后,用数学传统模型和ANFI模型模拟了突破性曲线。将每个模型获得的计算结果与实验数据进行比较。通过高精度预测铜生物吸附的ANFIS建模给出了最佳结果。突破曲线表面,其能够在不同的过程条件下实现系统的行为的可视化。

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