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Non-linear electrical characteristics of a barium-titanate based, positive temperature coefficient ceramic

机译:基于钡钛酸盐的非线性电气特性,正温度系数陶瓷

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Positive temperature coefficient materials are used iii temperature sensing applications and as current limiting devices where the large change of resistance over a limited temperature range is exploited. Previous work in this laboratory reportedan effect of applied voltage on the form of the resistivity- temperature curves. This was discussed in terms of a possible electric field effect. The presence of such a phenomenon would be important in PTC devices used in high current, high fieldapplications.The present work has investigated this effect in barium titanate based materials. By comprehensively monitoring the current-voltage and resistivity-temperature characteristics, it has been shown that, for a particular indicated temperature, an increasein the measuring voltage results in an increase in the resistivity. Once the temperature of the ceramic rises, through a combination of Joule heating and external heating, the resistivity rises sufficiently so that the power dissipated tends to zero.Thereafter the resistivity-temperature curve can follow the same locus. Below the resistivity transition, as a result of Joule heating, the surface (measured) temperature can be significantly lower than the core temperature. This results in the transition occurring at lower apparent temperatures. Above the transition temperature voltage dependent differences were observed which can be attributed to a field effect.
机译:正温度系数材料使用III温度传感应用,并且作为电流限制装置,其中利用在有限的温度范围内的大量电阻变化。以前的工作在该实验室报告施加电压对电阻率温度曲线形式的影响。这就是可能的电场效应而讨论的。这种现象的存在在高电流,高野原应用中使用的PTC装置中是重要的。本作本作研究了基于钛酸钡的材料对此作用。通过全面监测电流电压和电阻率 - 温度特性,已经显示出,对于特定的指示温度,测量电压的增加导致电阻率增加。一旦陶瓷的温度升温,通过焦耳加热和外部加热的组合,电阻率充分升高,使得耗散的功率趋于零。后者电阻率温度曲线可以遵循相同的轨迹。在电阻率过渡下方,由于焦耳加热,表面(测量)温度可以显着低于核心温度。这导致在较低表观温度下发生的过渡。高于过渡温度电压依赖性差异,其可归因于场效应。

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