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Characterisation of Organic Solvent Nanofiltration membranes in multi-component mixtures: Process design workflow for utilising targeted solvent modifications

机译:多组分混合物中有机溶剂纳滤膜的表征:利用目标溶剂改性的工艺设计工作流程

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Organic Solvent Nanofiltration (OSN) is a pressure-driven membrane separation process for separating liquid organic solvents. It can potentially be applied in chemical, petrochemical and pharmaceutical industries. In contrast to well-established design approaches for conventional unit operations such as distillation, design methods for integrating OSN in chemical production processes are very limited. The reason is a lack of information on expected OSN membrane performance as well as missing general understanding of the complicated transport mechanism through OSN membranes. Therefore, this paper introduces a workflow that accounts for the current limited information and makes a general process design feasible. This includes a solvent/membrane selection in early stages of process design beyond state-of-the art OSN membrane screening experiments that so far do not address solvent variations. As the interaction between solute, solvent and membrane material on the separation behaviour of the membrane is substantial, an integrated selection of membrane and solvent for a targeted rejection of a solute might lead to large improvements. Within the developed four-step design workflow, also the integration of design tools such as membrane rejection maps (MRM), membrane modelling maps (MMM) and OSN membrane cascade based optimisation are addressed. Targeted solvent modifications/ additions may therefore result in better flux and/or rejection properties of Puramem~(?)280 and GMT- oNF-2 and hence, in reduction of production costs. The design approach is demonstrated on a case study of industrial importance which is the recycling of homogeneous catalysts.
机译:有机溶剂纳滤(OSN)是一种压力驱动的膜分离工艺,用于分离液体有机溶剂。它可以潜在地应用于化学,石化和制药行业。与用于常规单元操作(例如蒸馏)的公认设计方法相比,将OSN集成到化学生产过程中的设计方法非常有限。原因是缺少有关预期的OSN膜性能的信息,以及对通过OSN膜的复杂转运机制的一般理解。因此,本文介绍了一种工作流,该工作流考虑了当前的有限信息,并使通用过程设计可行。这包括在工艺设计的早期阶段中对溶剂/膜的选择,这超出了迄今为止无法解决溶剂变化的最新OSN膜筛选实验。由于溶质,溶剂和膜材料之间的相互作用对膜的分离性能影响很大,因此针对溶质的靶向排阻,对膜和溶剂的综合选择可能会带来很大的改进。在已开发的四步设计工作流程中,还解决了设计工具的集成问题,例如膜截留图(MRM),膜建模图(MMM)和基于OSN膜级联的优化。因此,有针对性的溶剂改性/添加可以导致Puramem_(α)280和GMT-oNF-2的更好的通量和/或排斥性能,从而降低生产成本。在工业重要性案例研究中证明了该设计方法,该案例是均相催化剂的循环利用。

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