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Simulating the Sorptive Removal of Dissolved Copper by Biocarrier Beads

机译:模拟生物载体珠对溶解性铜的吸附去除

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Biocarrier beads containing the dead biomass of Bacillus drentensis immobilized in polymer polysulfone were synthesized in order to remove heavy metals from wastewater. A series of batch experiments were carried out to identify the sorption mechanisms and the theoretical nature of the underlying processes. A mathematical model was developed to simulate the fate and transport of copper ions in a saturated fixed bed packed with biocarrier beads. Mass balance equations were established to represent the migration and distribution of metal ions in the biocarrier beads and the surrounding bulk liquid. Numerical experiments were performed using the proposed model for quantitative analysis of the temporal changes in the distribution of copper ions in and around the biocarrier beads in a fixed bed. The simulation results show that the biosorption of heavy metals by the biocarrier beads depends largely on surface adsorption. A sensitivity analysis was carried out on the major design parameters in a fixed bed. The effects of bed height, flow velocity, and influent concentration were examined by assessing a simulated breakthrough curve. The breakthrough time occurs earlier for a decreasing bed height and increasing flow velocity and influent Cu(II) concentration, whereas the slope at 50 % breakthrough becomes steeper as the flow velocity increases and the influent concentration decreases. The simulation results show that the proposed mathematical model can provide a quantitative analysis of the distribution of metal adsorbate in and around porous particulate adsorbents in a fixed bed and that it can be used as an effective predictive tool.
机译:为了去除废水中的重金属,合成了载有固定在聚合物聚砜中的枯草芽孢杆菌的死生物质的生物载体珠。进行了一系列的分批实验,以确定吸附机理和基本过程的理论性质。建立了数学模型来模拟铜离子在充满生物载体微珠的饱和固定床上的命运和运输。建立了质量平衡方程,以表示金属离子在生物载体珠粒和周围的大块液体中的迁移和分布。使用提出的模型进行了数值实验,用于定量分析固定床中生物载体珠粒内部和周围的铜离子分布的时间变化。模拟结果表明,生物载体珠对重金属的生物吸附在很大程度上取决于表面吸附。在固定床中对主要设计参数进行了灵敏度分析。通过评估模拟的穿透曲线,检查了床高,流速和进水浓度的影响。随着床层高度的降低,流速的增加以及进水Cu(II)浓度的增加,渗透时间更早,而随着流速的增加和进水浓度的降低,渗透率在50%时的斜率变得更陡。仿真结果表明,所提出的数学模型可以对固定床中多孔颗粒吸附剂内部和周围的金属吸附物分布进行定量分析,可以作为一种有效的预测工具。

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