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Microstructure control to reduce leakage current of medium and high voltage ceramic varistors based on doped ZnO

机译:基于掺杂ZnO的降低中高压陶瓷压敏电阻漏电流的微结构控制

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摘要

The leakage current and the non-linearity coefficient (α) are crucial parameters in varistors. This work, deals with the optimization of the electrical characteristics of medium and high voltage varistors based on the ZnO–Bi2O3–Sb2O3 system. First, the aim was to allow the formation and the stabilization of the spinel phase by reducing the heating rate. To do so, the right sintering temperature and dwell time have to be chosen to obtain a breakdown field suitable for industrial requirements. During cooling, the spinel phase can return to a pyrochlore phase, which contributes to the increase of leakage current. In a second part, this reaction was prevented by faster cooling in an appropriate temperature range. The fine-tuning of both the heating and cooling phases leads to a significant decrease of the leakage current. Moreover, the value of the non-linearity coefficient was increased by 80%, due to better and more homogeneous wetting of the ZnO grains by the Bi-rich phase.
机译:漏电流和非线性系数(α)是压敏电阻的关键参数。这项工作基于ZnO–Bi2O3–Sb2O3系统,优化了中压变阻器的电气特性。首先,目的是通过降低加热速率来形成和稳定尖晶石相。为此,必须选择合适的烧结温度和停留时间,以获得适合工业要求的击穿场。在冷却过程中,尖晶石相可能返回烧绿石相,这有助于增加漏电流。在第二部分中,通过在合适的温度范围内更快地冷却来防止该反应。加热和冷却阶段的微调都会导致漏电流的显着降低。此外,由于富Bi的ZnO晶粒更好,更均匀地润湿,非线性系数的值增加了80%。

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