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In Situ Solvent Recovery by Organic Solvent Nanofiltration

机译:通过有机溶剂纳滤原位回收溶剂

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Reducing solvent consumption in the chemical industries is increasingly becoming a topic of interest. The field of organic solvent nanofiltration (OSN) has markedly evolved in the past decade, and effective membranes are now available that can withstand aggressive solvents while completely rejecting small solutes at the lower end of the nanofiltration range (100-2000 g·mol~(-1)). With such membranes in hand and the advantages of membrane modularity, it is now possible to design innovative configurations to drastically reduce solvent consumption and enhance sustainability of downstream processes. Notably, a membrane-based solvent recovery configuration reported in our group has opened a new market for OSN membranes. In this work, the current state-of-the-art OSN membranes are screened, and a possible operation window for solvent recovery is identified. In tandem, to tackle the high solvent consumption challenge of membrane-based separation, we improved the solvent recovery configuration by combining both solute separation and solvent recovery in situ. The resultant system effectively performs the desired separation without any addition of extra solvent, thereby reducing solvent consumption to nearly zero. A model system comprising roxithromycin pharmaceutical and triphenylmethanol impurity is employed to illustrate that the proposed configuration allows constant volume diafiltration to be performed without any addition of fresh solvent. Parameters affecting the separation have been identified and validated experimentally or via modeling, and theoretical limitations are critically analyzed. The operability and carbon footprint have been compared with conventional solvent recovery units (e.g., distillation and adsorption). The present work reinforces that OSN is a leading separation technology in the process intensification movement of the fine chemicals sector.
机译:减少化学工业中的溶剂消耗正日益成为人们关注的话题。在过去的十年中,有机溶剂纳米过滤(OSN)的领域已显着发展,现在可以使用有效的膜,该膜可以耐受侵蚀性溶剂,同时在纳滤范围的下限(100-2000 g·mol〜( -1))。有了这样的膜并具有膜模块化的优势,现在可以设计创新的配置以大大减少溶剂消耗并增强下游工艺的可持续性。值得注意的是,我们小组报告的基于膜的溶剂回收配置为OSN膜打开了新的市场。在这项工作中,筛选了当前最先进的OSN膜,并确定了溶剂回收的可能操作窗口。同时,为了解决基于膜分离的高溶剂消耗挑战,我们通过结合溶质分离和原位溶剂回收来改进溶剂回收配置。所得系统无需进行任何额外的溶剂即可有效地进行所需的分离,从而将溶剂消耗降低至几乎为零。使用包含罗红霉素药物和三苯甲醇杂质的模型系统来说明所提出的配置允许在不添加任何新鲜溶剂的情况下进行恒定体积的渗滤。已经通过实验或通过建模确定并验证了影响分离的参数,并严格分析了理论限制。已经将操作性和碳足迹与常规溶剂回收单元(例如,蒸馏和吸附)进行了比较。当前的工作强调了OSN是精细化工领域工艺强化运动中的领先分离技术。

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