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Contact Resistance of Ceramic Interfaces Between Materials Used for Solid Oxide Fuel Cell Applications

机译:用于固体氧化物燃料电池应用的材料之间的陶瓷界面的接触电阻

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摘要

The contact resistance can be divided into two main contributions. The small area of contact between ceramic components results in resistance due to current constriction. Resistive phases or potential barriers at the interface result in an interface contribution to the contact resistance, which may be smaller or larger than the constriction resistance.The contact resistance between pairs of three different materials were analysed (stron-tium doped lanthanum manganite, yttria stabilised zirconia and strontium and nickel doped lanthanum cobaltite), and the effects of temperature, atmosphere, polarisation and mechanical load on the contact resistance were investigated.The investigations revealed that the mechanical load of a ceramic contact has a high influence on the contact resistance, and generally power law dependence between the contact resistance and the mechanical load was found. The influence of the mechanical load on the contact resistance was ascribed to an area effect.The contact resistance of the investigated materials was dominated by current constric-tion at high temperatures. The measured contact resistance was comparable to the resis-tance calculated on basis of the contact areas found by optical and electron microscopy. At low temperatures, the interface contribution to the contact resistance was dominating. The cobaltite interface could be described by one potential barrier at the contact interface, whereas the manganite interfaces required several consecutive potential barriers to model the observed behaviour. The current-voltage behaviour of the YSZ contact interfaces was only weakly non-linear, and could be described by 22 ± 1 barriers in series.Contact interfaces with sinterable contact layers were also investigated, and the mea-sured contact resistance for these interfaces were more than 10 times less than for the other interfaces.
机译:接触电阻可分为两个主要部分。陶瓷组件之间的小接触面积会因电流收缩而产生电阻。界面处的电阻相或势垒会导致界面对接触电阻的影响,该接触电阻可能小于或大于收缩电阻。分析了三种不同材料对之间的接触电阻(锶锶掺杂的锰酸镧,氧化钇稳定研究了氧化锆,锶和镍掺杂的镧镧钴矿),以及温度,气氛,极化和机械负载对接触电阻的影响。研究表明,陶瓷触点的机械负载对接触电阻有很大的影响,并且通常,发现接触电阻与机械负载之间的幂律相关性。机械载荷对接触电阻的影响归因于面积效应。所研究材料的接触电阻主要受高温下的电流限制。测得的接触电阻与基于光学和电子显微镜发现的接触面积计算出的电阻相当。在低温下,界面对接触电阻的贡献起主要作用。钴界面可以通过接触界面处的一个势垒来描述,而锰矿界面则需要多个连续的势垒来对观察到的行为进行建模。 YSZ接触界面的电流-电压行为只是微弱的非线性,可以用22±1的串联势垒来描述。还研究了带有可烧结接触层的接触界面,并测量了这些界面的接触电阻比其他接口少10倍以上。

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    Koch Søren;

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  • 年度 2002
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  • 原文格式 PDF
  • 正文语种 eng
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