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Mechanical durability of solid oxide fuel cell glass-ceramic sealant/steel interconnect joint under thermo-mechanical cycling

机译:固体氧化物燃料电池玻璃陶瓷密封胶/钢互连接头在热机械循环下的机械耐久性

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摘要

A testing method is developed to quantitatively determine the thermo-mechanical cycling life in oxidizing atmosphere for the joint between a solid oxide fuel cell glass-ceramic sealant and a ferritic stainless steel interconnect. Thermo-mechanical cycling tests are performed under cyclic shear or tensile loading in conjunction with cyclic temperature variance between 40 degrees C and 800 degrees C. Results reveal thermo-mechanical cycling life under both shear and tensile loadings increases with a decrease in end stress at 800 degrees C, for a certain end stress at 40 degrees C. Nevertheless, for a certain end stress at 800 degrees C, the tensile thermo-mechanical cycling life increases with a decrease in end stress at 40 degrees C, while the shear thermo-mechanical cycling life is independent of end stress at 40 degrees C. A difference in fracture pattern is also observed between shear and tensile loadings. For shear loading, fracture mainly takes place along the interface between glass-ceramic sealant and an oxide layer, such as BaCrO4 or Cr2O3. However, for tensile loading, fracture mainly occurs within the glass-ceramic layer, following crack initiation at the interface of Cr2O3/sealant or Cr2O3/BaCra(4). (C) 2019 Elsevier Ltd. All rights reserved.
机译:针对固体氧化物燃料电池玻璃陶瓷密封胶和铁素体不锈钢互连件之间的连接,开发了一种测试方法来定量确定在氧化气氛中的热机械循环寿命。热机械循环测试是在循环剪切或拉伸载荷下进行的,温度循环温度在40摄氏度至800摄氏度之间进行。结果表明,在800摄氏度时,剪切和拉伸载荷下的热机械循环寿命会随着端应力的减小而增加摄氏度,对于40摄氏度的特定终端应力。然而,对于800摄氏度的特定终端应力,拉伸热机械循环寿命随着40摄氏度下的终端应力的降低而增加,而剪切热机械循环寿命循环寿命与40摄氏度时的最终应力无关。在剪切载荷和拉伸载荷之间还观察到断裂模式的差异。对于剪切载荷,断裂主要发生在玻璃陶瓷密封胶和氧化层(如BaCrO4或Cr2O3)之间的界面上。但是,对于拉伸载荷,在Cr2O3 /密封胶或Cr2O3 / BaCra(4)的界面处出现裂纹后,裂纹主要发生在玻璃陶瓷层内。 (C)2019 Elsevier Ltd.保留所有权利。

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