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Experimental Investigation of the Gas/Liquid Phase Separation Using a Membrane-Based Micro Contactor

机译:基于膜微接触器的气/液相分离实验研究

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The gas/liquid phase separation of CO2 from a water-methanol solution at the anode side of a μDirect-Methanol-Fuel-Cell (μDMFC) plays a key role in the overall performance of fuel cells. This point is of particular importance if the μDMFC is based on a “Lab-on-a-Chip” design with transient working behaviour, as well as with a recycling and a recovery system for unused fuel. By integrating a membrane-based micro contactor downstream into the μDMFC, the efficient removal of CO2 from a water-methanol solution is possible. In this work, a systematic study of the separation process regarding gas permeability with and without two-phase flow is presented. By considering the μDMFC working behaviour, an improvement of the overall separation performance is pursued. In general, the gas/liquid phase separation is achieved by (1) using a combination of the pressure gradient as a driving force, and (2) capillary forces in the pores of the membrane acting as a transport barrier depending on the nature of it (hydrophilic/hydrophobic). Additionally, the separation efficiency, pressure gradient, orientation, liquid loss, and active membrane area for different feed inlet temperatures and methanol concentrations are investigated to obtain an insight into the separation process at transient working conditions of the μDMFC.
机译:在μDirect-甲醇-燃料电池(μDMFC)的阳极侧,从水-甲醇溶液中进行气/液相分离,在燃料电池的整体性能中起着关键作用。如果μDMFC是基于“芯片实验室”设计的,该设计具有短暂的工作行为,并且具有针对未使用燃料的回收和回收系统,则这一点尤其重要。通过将基于膜的微接触器下游集成到μDMFC中,可以有效地从水-甲醇溶液中去除CO2。在这项工作中,对有和没有两相流的气体渗透率的分离过程进行了系统的研究。通过考虑μDMFC的工作行为,追求整体分离性能的提高。通常,气相/液相分离是通过(1)使用压力梯度作为驱动力,以及(2)膜孔中的毛细作用力(取决于膜的性质)来实现的,从而实现(亲水/疏水)。此外,还研究了不同进料入口温度和甲醇浓度下的分离效率,压力梯度,方向,液体损失和活性膜面积,以了解μDMFC瞬态工作条件下的分离过程。

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