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Development of thin film heat flux sensor based on transparent conductive oxide thermopile with antireflective coating

Xin Li (School of Physical Science and Technology, Xiamen University, Xiamen, China and Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
ZaiFu Cui (Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
Daoheng Sun (Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
Qinnan Chen (Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
Gonghan He (Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
Baolin Liu (School of Physical Science and Technology, Xiamen University, Xiamen, China)
Zhenyin Hai (Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
Guochun Chen (Fujian Micro/Nano Manufacturing Engineering Technology Research Center, Xiamen University, Xiamen, China)
Zhiyuan Jia (The Fourth department, North Automatic Control Technology Institute, Taiyuan, China)
Zong Yao (The Fourth department, North Automatic Control Technology Institute, Taiyuan, China)

Sensor Review

ISSN: 0260-2288

Article publication date: 13 May 2022

Issue publication date: 30 June 2022

242

Abstract

Purpose

The measurement of heat flux is of importance to the development of aerospace engine as basic physical quantities in extreme environment. Heat radiation is one of the basic forms of heat transfer phenomenon. The structure optimizing can improve the performance and infrared absorptivity of the thin film sensor.

Design/methodology/approach

This paper designed one kind of thin film heat flux sensor (HFS) with antireflective coating based on transparent conductive oxide thermopile. The introduced membrane structure is so thin that it has little impact on sensor performance. Fabrication of thin film sensors were fabricated by physical vapor deposition (PVD) process.

Findings

The steady-state and dynamic response characteristics of the HFS were investigated by calibration platform. The experimental results shown that the absorptivity of the membrane structure (for1070nm) improved compared with that before optimization. The sensitivity of heat flux gauge was 48.56 µV/ (kW/m2) and its frequency response was determined to be about 1980 Hz.

Originality/value

The thin film HFS uses thermopile based on Indium Tin Oxid and In2O3. The antireflective coating is introduced to hot endpoint of HFS to improve sensitivity on laser thermal source. The infrared optical properties of membrane layer structure were investigated. The steady-state and the transient response characteristics of the heat flux sensor were also investigated.

Keywords

Acknowledgements

Science and Technology Program of Shenzhen.

JCYJ20170818141912229.

The Sub-contractor subject of Gas Turbine Research Institute.

GJLZ-2020–0059.

Citation

Li, X., Cui, Z., Sun, D., Chen, Q., He, G., Liu, B., Hai, Z., Chen, G., Jia, Z. and Yao, Z. (2022), "Development of thin film heat flux sensor based on transparent conductive oxide thermopile with antireflective coating", Sensor Review, Vol. 42 No. 4, pp. 428-439. https://doi.org/10.1108/SR-10-2021-0384

Publisher

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Emerald Publishing Limited

Copyright © 2022, Emerald Publishing Limited

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