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Design and optimisation of a high-temperature silicon micro-hotplate for nanoporous palladium pellistors

机译:纳米多孔钯薄膜的高温硅微电炉的设计与优化

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The conventional design of the heater in a silicon micro-hotplate employ a simple meandering resistive track to form a square element. We show that this heater structure produces an uneven thermal profile characterised by a central hot spot with a significant variation in temperature of some 50℃ across the plate at an average temperature of 500℃. Four novel micro-heater designs are reported here and fabricated on hotplates with an active area that ranges from (200 X 200) μm~2 to (570 X 570) 蘭~2 in order to vary systematically the ratio of membrane to heater length from a value of 5.0-2.7, respectively. All the designs have been simulated using a 3D electro-thermo-mechanical finite element model and results agree well with thermal profiles taken using an infrared microscope. One of the designs, referred to here as 'drive-wheel' structure, performs best and reduces the lateral variation in temperature to only +- 10℃. The different resistive micro-heaters have been calibrated with the lowest power consumption being 50 mW at 500℃, which is well below the power consumption of any commercial pellistor; the maximum temperature before rupture being 870℃. The micro-hotplates were electrochemically coated with a 20 nm thick mesoporous palladium catalyst and the pellistors' response tested to 2.5% methane in air. The micro-heaters were observed to be stable for a period of 1000 h and should provide a good platform for exploitation in commercial catalytic pellistors.
机译:硅微热板中加热器的常规设计采用简单的曲折电阻轨迹形成方形元件。我们发现,这种加热器结构产生的热分布不均匀,其特征在于中心热点,整个平板的平均温度为500℃时,整个板上的温度大约有50℃的明显变化。这里报道了四种新颖的微型加热器设计,并在热板上制造,其有效面积为(200 X 200)μm〜2至(570 X 570)兰〜2,以便系统地改变膜与加热器长度的比率分别从5.0-2.7的值开始。所有设计均使用3D电热机械有限元模型进行了仿真,结果与使用红外显微镜拍摄的热曲线非常吻合。其中一种设计在这里称为“驱动轮”结构,性能最佳,并将温度的横向变化降低到仅±10℃。已经对不同的电阻式微加热器进行了校准,在500℃时的最低功耗为50 mW,远低于任何商用pellistor的功耗;破裂前最高温度为870℃。用20 nm厚的中孔钯催化剂对微热板进行电化学涂覆,并测试了在空气中2.5%甲烷时的pellistors响应。观察到微加热器在1000 h内保持稳定,并应为商业催化pellistors的开发提供一个良好的平台。

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