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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Modeling adsorption rate of tetracyclines on activated carbons from aqueous phase
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Modeling adsorption rate of tetracyclines on activated carbons from aqueous phase

机译:模拟四环素在水相活性炭上的吸附速率

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The adsorption rate of three tetracyclines (TCs) (tetracycline, oxytetracycline, chlortetracycline) on two activated carbons (ACs) were investigated in this work. The experimental adsorption equilibrium data of the TCs on both carbons was obtained in a batch adsorber at T=298 K and pH range of 4-5, and the Langmuir isotherm better interpreted the experimental data than the Freundlich isotherm. The adsorption of TCs on the ACs was mainly due to pi-pi interactions. The rate of adsorption of TCs was interpreted using kinetic models along with diffusional models. The pseudo-first-order and pseudo-second-order were fitted to the experimental concentration decay curves of the TCs for the adsorption of TCs on ACs. The first-order kinetic model matched reasonably well the experimental concentration decay data, but the rate constant, k(1), considerably decreased with time. Thus, the rate of adsorption of TCs on ACs cannot be interpreted by the first-order kinetic model. The pore volume diffusion model (PVDM) and the pore volume and surface diffusion model (PVSDM) were also applied to interpret the rate of adsorption of TCs. The PVDM overpredicted the experimental concentration decay data indicating that intraparticle diffusion was due to both pore volume and surface diffusion mechanisms. The PVSDM fitted quite well the experimental concentration decay data of the TCs on both ACs, showing that the intraparticle diffusion of TCs is due to the pore volume diffusion, as well as the surface diffusion. Furthermore, the contribution of surface diffusion is directly dependent on the adsorption capacity of the carbons because the concentration of TCs adsorbed on the surface is the driving force of surface diffusion. Additionally, the contribution of surface diffusion is affected by the time and radial position. (C) 2015 The Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:在这项工作中,研究了三种四环素(TC)(四环素,土霉素,金霉素)在两种活性炭(AC)上的吸附速率。在间歇式吸附器中,在T = 298 K和pH值为4-5的情况下,获得了TCs在两种碳上的吸附平衡数据,Langmuir等温线比Freundlich等温线更好地解释了实验数据。 TC在AC上的吸附主要是由于pi-pi相互作用。使用动力学模型和扩散模型解释了TCs的吸附速率。将伪一阶和伪二阶拟合到TC的实验浓度衰减曲线,以将TC吸附在AC上。一阶动力学模型与实验浓度衰减数据相当吻合,但速率常数k(1)随时间显着降低。因此,一阶动力学模型无法解释TCs在AC上的吸附速率。孔隙体积扩散模型(PVDM)和孔隙体积与表面扩散模型(PVSDM)也被用来解释TCs的吸附速率。 PVDM高估了实验浓度衰减数据,表明颗粒内扩散是由于孔体积和表面扩散机制所致。 PVSDM很好地拟合了两个AC上TC的实验浓度衰减数据,表明TC的颗粒内扩散是由于孔体积扩散以及表面扩散所致。此外,表面扩散的作用直接取决于碳的吸附能力,因为吸附在表面上的TCs的浓度是表面扩散的驱动力。另外,表面扩散的作用受时间和径向位置的影响。 (C)2015化学工程师学会。由Elsevier B.V.发布。保留所有权利。

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