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Effect of flow velocity, substrate concentration and hydraulic cleaning on biofouling of reverse osmosis feed channels

机译:流速,底物浓度和水力清洗对反渗透进料通道生物结垢的影响

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A two-dimensional mathematical model coupling fluid dynamics, salt and substrate transport and biofilm development in time was used to investigate the effects of cross-flow velocity and substrate availability on biofouling in reverse osmosis (RO)anofiltration (NF) feed channels. Simulations performed in channels with or without spacer filaments describe how higher liquid velocities lead to less overall biomass amount in the channel by increasing the shear stress, in all studied cases at constant feed flow rate, biomass accumulation in the channel reached a steady state. Replicate simulation runs prove that the stochastic biomass attachment model does not affect the stationary biomass level achieved and has only a slight influence on the dynamics of biomass accumulation. Biofilm removal strategies based on velocity variations are evaluated. Numerical results indicate that sudden velocity increase could lead to biomass sloughing, followed however by biomass re-growth when returning to initial operating conditions. Simulations show particularities of substrate availability in membrane devices used for water treatment, e.g., the accumulation of rejected substrates at the membrane surface due to concentration polarization. Interestingly, with an increased biofilm thickness, the overall substrate consumption rate dominates over accumulation due to substrate concentration polarization, eventually leading to decreased substrate concentrations in the biofilm compared to bulk liquid.
机译:使用二维数学模型耦合流体动力学,盐和底物的运输以及生物膜的及时发育,以研究错流速度和底物可用性对反渗透(RO)/纳滤(NF)进料通道中生物污损的影响。在具有或不具有间隔丝的通道中进行的模拟描述了较高的液体速度如何通过增加剪切应力而导致通道中总生物量减少的情况,在所有研究的情况下,在恒定进料流量下,通道中的生物量积累达到稳态。重复的模拟运行证明,随机生物质附着模型不会影响所达到的固定生物质水平,而对生物质积累的动态影响很小。评价了基于速度变化的生物膜去除策略。数值结果表明,突然的速度增加可能会导致生物质掉落,但是当返回到初始操作条件时,生物质会重新生长。模拟显示了用于水处理的膜装置中底物可用性的特殊性,例如,由于浓差极化而导致的被拒绝底物在膜表面的积累。有趣的是,随着生物膜厚度的增加,由于底物浓度极化,总的底物消耗速率超过累积,从而占主导地位,最终导致生物膜中的底物浓度与散装液体相比降低。

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