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A batch fabrication-compatible multifunctional thermal sensor based on thin film thermocouple and thermopile elements

机译:基于薄膜热电偶和热电耦合元件的批量制造兼容多功能热传感器

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摘要

A novel high temperature, multi-functional thermal sensor is presented which is capable of being batch-produced using industry standard microfabrication techniques. The thin film thermocouple and thermopile features were designed to provide both surface temperature and surface heat flux data simultaneously. In addition, its small size allows for installation and usage without significantly disrupting heat or fluid flow from the component of interest. Single crystal sapphire served as the substrate material for its cost effectiveness and high temperature compatibility. Refractory materials tungsten and molybdenum were chosen as the thin film thermocouple/thermopile components, with magnesium oxide acting as a protective coating. All the materials utilized in the sensor have high melting point and comparable coefficients of thermal expansion. Thermal testing of the sensors up to 800 degrees C determined the thermocouple and thermopile outputs at a variety of temperatures and heat flux conditions. Results showed an increase in thermovoltage with temperature for the thermocouple elements, while the thermopile output increased linearly with applied heat flux. In terms of reliability, the sensor was able to perform continuously for ten hours at 800 degrees C within an unregulated air environment. Finally, finite element analysis of the sensor was utilized along with experimental test data to gain further insights into its internal temperature distribution and enhance interpretation of the experimental results. (C) 2018 Elsevier B.V. All rights reserved.
机译:提出了一种新型的高温多功能热传感器,其能够使用行业标准微型制剂技术进行批量生产。薄膜热电偶和热电堆特征设计为同时提供表面温度和表面热通量数据。此外,其小尺寸允许安装和使用,而不会显着破坏来自感兴趣的组件的热量或流体流动。单晶蓝宝石用作其成本效益和高温相容性的基底材料。选择耐火材料钨和钼作为薄膜热电偶/热疏水成分,用氧化镁作用作为保护涂层。传感器中使用的所有材料具有高熔点和可比热膨胀系数。传感器的热试验高达800℃,确定各种温度和热通量条件下的热电偶和热电堆输出。结果表明热电偶元件温度的热压增加,而热电堆输出随施加的热通量线性增加。在可靠性方面,传感器能够在未经调节的空气环境下连续地在800℃下连续10小时。最后,使用传感器的有限元分析以及实验测试数据,以进一步了解其内部温度分布并增强对实验结果的解释。 (c)2018年elestvier b.v.保留所有权利。

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