4.6 Article

Impact of Improved Design on Knudsen Force for Micro Gas Sensor

Journal

MICROMACHINES
Volume 11, Issue 7, Pages -

Publisher

MDPI
DOI: 10.3390/mi11070634

Keywords

Knudsen thermal force; low-pressure gas sensor; direct simulation Monte Carlo (DSMC); MEMS

Funding

  1. National Natural Science Foundation of China [31371873, 31000665, 51176027, 31300408]
  2. Special Program for Applied Research on Super Computation of the NSFC-Guangdong Joint Fund (the second phase) of China
  3. CAST-BISEE (Beijing Institute of Spacecraft Environment Engineering) innovation fund

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Knudsen force generated by thermally driven gas flow in a microscale structure has been used for gas detection and has shown immeasurable potential in the field of microelectromechanical system (MEMS) gas sensors due to its novel sensing characteristics. In this article, the performances of three kinds of Knudsen force gas sensors with improved isosceles triangular shuttle arm structures were studied. In the first design, the top side and right side lengths were equal; in the second, the top side and bottom side lengths were equal; and for the third, the bottom side and right side lengths were equal. A detailed investigation including gas flow, thermal characteristics, Knudsen force, and coupling effects between the shuttle-heater pairs was conducted using the direct simulation Monte Carlo (DSMC) method and the main mechanisms for gas flow presented were almost the same in this work. However, the second design returned the highest Knudsen force performance. The value increased by 42.9% (P = 387 Pa) compared to the Knudsen force of the original square shuttle arm. The results also demonstrate that the coupling effects become weak toward the right with an increase in the number of shuttle-heater pairs.

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