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Active Osmotic Exchanger for Efficient Nanofiltration Inspired by the Kidney

机译:有效渗透交换器,用于肾脏的有效纳米滤波

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In this paper, we investigate the physical mechanisms underlying one of the most efficient filtration devices: the kidney. Building on a minimal model of the Henle loop—the central part of the kidney filtration—we investigate theoretically the detailed out-of-equilibrium fluxes in this separation process in order to obtain absolute theoretical bounds for its efficiency in terms of separation ability and energy consumption. We demonstrate that this separation process operates at a remarkably small energy cost as compared to traditional sieving processes while working at much smaller pressures. This unique energetic efficiency originates in the double-loop geometry of the nephron, which operates as an active osmotic exchanger. The principles for an artificial-kidney-inspired filtration device could be readily mimicked based on existing soft technologies to build compact and low-energy artificial dialytic devices. Such a “kidney on a chip” also points to new avenues for advanced water recycling, targeting, in particular, sea-water pretreatment for decontamination and hardness reduction.
机译:在本文中,我们研究了最有效的过滤装置之一的物理机制:肾脏。在Henle Loop的最小模型上建立 - 肾脏过滤的中央部分 - 理论上研究了该分离过程中的详细均衡通量,以便在分离能力和能量方面获得绝对理论界。消费。我们证明,与传统的筛分过程相比,这种分离过程以比较小的压力工作的同时以显着的小能量成本运行。这种独特的能量效率起源于肾的双环几何形状,其作为主动渗透交换器运行。基于现有的软技术可以容易地模仿人工肾激发过滤装置的原理,以构建紧凑型和低能量人工透析装置。这种“筹码上的肾脏”还指出了新的水循环的新途径,靶向,特别是海水预处理用于去污和硬度降低。

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