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Influence of external mass transfer and support resistances for hydrogen permeation through composite palladium membranes

机译:通过复合钯膜对外部传质和支持电阻的影响

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Palladium membranes represent a suitable alternative to obtain high purity hydrogen for industrial applications. The modeling of hydrogen permeation through composite membranes is important to understand gas separation systems. Here, experimental and calculated hydrogen flux data through composite palladium/alumina membranes were compared. A dense palladium film of 2.4 μm thick was deposited on a porous support and the produced composite membrane presented infinite hydrogen/nitrogen selectivity. Experimental molecular hydrogen flux at 100 kPa and 723 K was 0.1015 ± 0.0009 mol m~(-2) s~(-1). Calculated molecular hydrogen fluxes with the conventional permeation model, without considering external mass transfer and support resistances, were at least 5.7 times greater than experimental data. However, calculated hydrogen flux was only 6.7% lower than the experimental flux at 100 kPa and 723 K when external mass transfer and support resistances were included in the conventional permeation model. Thus, external mass transfer resistances and the permeation through the porous support should be considered for a suitable description of hydrogen fluxes through composite palladium membranes.
机译:钯膜代表了用于获得工业应用的高纯度氢的合适替代方案。通过复合膜的氢渗透的建模对于了解气体分离系统是重要的。这里,比较了通过复合钯/氧化铝膜的实验性和计算的氢通量数据。在多孔载体上沉积2.4μm厚的致密钯膜,并且所产生的复合膜呈现无限氢/氮选择性。在100kPa和723k时的实验分子氢通量为0.1015±0.0009mol m〜(-2)s〜(-1)。计算出具有常规渗透模型的分子氢气通量,而不考虑外部传质和支持电阻,比实验数据大至少5.7倍。然而,计算的氢气通量低于100kPa和723k的实验通量低的6.7%,当常规渗透模型中包含外部传质和支持电阻时。因此,应考虑通过复合钯膜的合适描述氢通量的外部传质电阻和通过多孔载体的渗透。

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