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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Phase Stability and Permeation Behavior of a Dead-End Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ) Tube Membrane in High-Purity Oxygen Production
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Phase Stability and Permeation Behavior of a Dead-End Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ) Tube Membrane in High-Purity Oxygen Production

机译:高纯度制氧中无定形Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ)管膜的相稳定性和渗透行为

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Phase stability and oxygen permeation behavior of Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ) (BSCF) dead-end tube membranes were investigated in long-term oxygen production at 950 and 750 °C. At 950 °C, the BSCF tube membranes exhibit good long-term phase stability and a stable oxygen permeation flux However, at the intermediate temperature of 750 °C, both the oxygen permeation flux and the oxygen purity decrease continuously. This behavior is related to the formation of two secondary phases that are a hexagonal perovskite, Ba_(0.5±x)Sr_(0.5±x)CoO_(3-δ), and a trigonal mixed oxide, Ba_(1-x)Sr_xCo_(2-y)Fe_yO5, that evolved in the ceramic membrane made of cubic BSCF perovskite during the dynamic flow of oxygen through it. Tensile stress as a result of phase formation causes the development of cracks in the membrane, which spoil the purity of the permeated oxygen. The partial degradation of cubic BSCF perovskite in the intermediate temperature range (750 °C) was more pronounced under the strongly oxidizing conditions on the oxygen supply (feed) side than on the oxygen release (permeate) side of the membrane. The structural instability of BSCF is attributed to an unsuitable redox state of cobalt, that exhibits an ionic radius that is too small to be tolerated by the cubic perovskite structure, which then becomes unstable. The phase stability of cubic BSCF (i,e., the proper redox states of cobalt) can be maintained by operating the membrane in the high temperature regime (950 °C).
机译:研究了Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ)(BSCF)死端管膜在950和750°下长期产生氧气时的相稳定性和氧渗透行为C。在950°C时,BSCF管膜表现出良好的长期相稳定性和稳定的氧渗透通量。但是,在750°C的中间温度下,氧渗透通量和氧纯度均连续下降。此行为与两个次级相的形成有关,两个次级相是六方钙钛矿Ba_(0.5±x)Sr_(0.5±x)CoO_(3-δ)和三角形混合氧化物Ba_(1-x)Sr_xCo_( 2-y)Fe_yO5,它在氧气动态流过的过程中在立方BSCF钙钛矿制成的陶瓷膜中析出。由于形成相而引起的拉伸应力导致膜中裂纹的发展,破坏了渗透氧气的纯度。在中等温度范围(750°C)下,立方晶BSCF钙钛矿的部分降解在膜的氧气供应(进料)侧比氧气释放(渗透)侧的强氧化条件下更为明显。 BSCF的结构不稳定性归因于钴的不合适的氧化还原状态,该钴的氧化还原状态的离子半径太小而不能被立方钙钛矿结构所容忍,然后变得不稳定。立方BSCF的相稳定性(即适当的钴氧化还原态)可以通过在高温条件下(950℃)操作膜来维持。

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