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首页> 外文期刊>RSC Advances >The effect of microstructure and surface decoration with K2NiF4-type oxide upon the oxygen permeability of perovskite-type La0.7Sr0.3FeO3-delta hollow fiber membranes
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The effect of microstructure and surface decoration with K2NiF4-type oxide upon the oxygen permeability of perovskite-type La0.7Sr0.3FeO3-delta hollow fiber membranes

机译:K2NiF4型氧化物的微结构和表面修饰对钙钛矿型La0.7Sr0.3FeO3-δ中空纤维膜透氧性的影响

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摘要

Dense La0.7Sr0.3FeO3-delta (LSF) hollow fiber membranes with two kinds of microstructures (LSF-a and LSF-b) were prepared by the phase inversion/sintering method. Outer surface decoration with dispersed porous K2NiF4-type oxide (La0.5Sr0.5)(2)CoO4+delta (LSC214) was employed to improve the surface exchange reaction kinetics of oxygen reduction. Experimental results suggest the oxygen permeability of the LSF-b membrane is much better than that of LSF-a membrane at all the tested conditions, which means the microstructure of the hollow fiber membrane plays a crucial role in the oxygen permeability. LSC214 decoration further increases the oxygen permeation flux greatly. Moreover, although the oxygen permeation fluxes are positively related to both the operating temperature and flow rate of helium gas, the former has a greater effect on the oxygen permeation performance than the latter. Keeping the flow rate of helium gas at 200 ml min(-1), the oxygen permeation fluxes of the bare LSF-a (LSF-b) and the LSC214-decorated LSF-a (LSF-b) membranes are about 0.009-0.367 (0.254-5.401) and 0.048-0.426 (1.520-7.003) ml min(-1) cm(-2), respectively, with operating temperature varied from 700 to 1000 degrees C. For both kinds of decorated membranes, more remarkable improvements of oxygen permeation fluxes appear at intermediate operating temperature range (700-850 degrees C) than higher temperature range (8501000 degrees C), which indicates that the surface oxygen exchange reaction plays a decisive role in controlling the overall oxygen transport process at lower temperature. In addition, the surface decorated membrane also displays high permeation stability under the investigated operating conditions.
机译:通过相转化/烧结法制备了具有两种微观结构(LSF-a和LSF-b)的致密La0.7Sr0.3FeO3-δ(LSF)中空纤维膜。采用分散的多孔K2NiF4型氧化物(La0.5Sr0.5)(2)CoO4 +δ(LSC214)进行外表面装饰,以改善氧还原的表面交换反应动力学。实验结果表明,在所有测试条件下,LSF-b膜的透氧性均优于LSF-a膜,这意味着中空纤维膜的微观结构在透氧性中起着至关重要的作用。 LSC214装饰物进一步大大提高了氧气的渗透通量。此外,尽管氧气渗透通量与氦气的工作温度和流速均呈正相关,但前者对氧气渗透性能的影响大于后者。保持氦气流速为200 ml min(-1),裸LSF-a(LSF-b)和LSC214装饰的LSF-a(LSF-b)膜的透氧量约为0.009-0.367 (0.254-5.401)和0.048-0.426(1.520-7.003)ml min(-1)cm(-2),工作温度从700到1000摄氏度不等。对于两种装饰膜,氧气渗透通量出现在中间温度范围(700-850摄氏度)而不是较高温度范围(8501000摄氏度),这表明表面氧交换反应在控制较低温度下的整个氧气输送过程中起决定性作用。另外,在研究的操作条件下,表面修饰的膜还显示出高渗透稳定性。

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