» Articles » PMID: 28885595

Thermal Flow Sensors for Harsh Environments

Overview
Journal Sensors (Basel)
Publisher MDPI
Specialty Biotechnology
Date 2017 Sep 9
PMID 28885595
Citations 20
Authors
Affiliations
Soon will be listed here.
Abstract

Flow sensing in hostile environments is of increasing interest for applications in the automotive, aerospace, and chemical and resource industries. There are thermal and non-thermal approaches for high-temperature flow measurement. Compared to their non-thermal counterparts, thermal flow sensors have recently attracted a great deal of interest due to the ease of fabrication, lack of moving parts and higher sensitivity. In recent years, various thermal flow sensors have been developed to operate at temperatures above 500 °C. Microelectronic technologies such as silicon-on-insulator (SOI), and complementary metal-oxide semiconductor (CMOS) have been used to make thermal flow sensors. Thermal sensors with various heating and sensing materials such as metals, semiconductors, polymers and ceramics can be selected according to the targeted working temperature. The performance of these thermal flow sensors is evaluated based on parameters such as thermal response time, flow sensitivity. The data from thermal flow sensors reviewed in this paper indicate that the sensing principle is suitable for the operation under harsh environments. Finally, the paper discusses the packaging of the sensor, which is the most important aspect of any high-temperature sensing application. Other than the conventional wire-bonding, various novel packaging techniques have been developed for high-temperature application.

Citing Articles

Flow-Independent Thermal Conductivity and Volumetric Heat Capacity Measurement of Pure Gases and Binary Gas Mixtures Using a Single Heated Wire.

Kenari S, Wiegerink R, Sanders R, Lotters J Micromachines (Basel). 2024; 15(6).

PMID: 38930641 PMC: 11205284. DOI: 10.3390/mi15060671.


Low-Power AlGaN/GaN Triangular Microcantilever for Air Flow Detection.

Uppalapati B, Gajula D, Bava M, Muthusamy L, Koley G Sensors (Basel). 2023; 23(17).

PMID: 37687921 PMC: 10490568. DOI: 10.3390/s23177465.


Structural Design of Dual-Type Thin-Film Thermopiles and Their Heat Flow Sensitivity Performance.

Chen H, Liu T, Feng N, Shi Y, Zhou Z, Dai B Micromachines (Basel). 2023; 14(7).

PMID: 37512769 PMC: 10383639. DOI: 10.3390/mi14071458.


Thermal Flow Meter with Integrated Thermal Conductivity Sensor.

Kenari S, Wiegerink R, Veltkamp H, Sanders R, Lotters J Micromachines (Basel). 2023; 14(7).

PMID: 37512591 PMC: 10383380. DOI: 10.3390/mi14071280.


Research on Dust Effect for MEMS Thermal Wind Sensors.

Yi Z, Wang Y, Qin M, Huang Q Sensors (Basel). 2023; 23(12).

PMID: 37420700 PMC: 10301299. DOI: 10.3390/s23125533.


References
1.
Jiang X, Kim K, Zhang S, Johnson J, Salazar G . High-temperature piezoelectric sensing. Sensors (Basel). 2013; 14(1):144-69. PMC: 3926551. DOI: 10.3390/s140100144. View

2.
Phan H, Dinh T, Kozeki T, Qamar A, Namazu T, Dimitrijev S . Piezoresistive effect in p-type 3C-SiC at high temperatures characterized using Joule heating. Sci Rep. 2016; 6:28499. PMC: 4923857. DOI: 10.1038/srep28499. View

3.
French P, Krijnen G, Roozeboom F . Precision in harsh environments. Microsyst Nanoeng. 2019; 2:16048. PMC: 6444743. DOI: 10.1038/micronano.2016.48. View