Multiphysics Numerical Simulation and Geometric Optimization of a Micronozzle for the MEMS Thruster

Author:

Li Xingchen12,Liang Haopeng3,Zhang Ruofan3,Yao Wen1,Chen Xiaoqian1

Affiliation:

1. Defense Innovation Institute, Chinese Academy of Military Science, Beijing 100071, China.

2. Department of Energy Sciences, Lund University, Lund 22100, Sweden.

3. College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China.

Abstract

This paper reports a numerical research on MEMS (microelectromechanical system) micronozzles through multiphysics coupling simulation along with design optimization based on simulation results. The micronozzle, which is a core component of the electrothermal microthruster, features a micron-scale geometry, a 2-dimensional (2D) Laval configuration, a rectangular cross section, and a highly thermal conductive silicon wall due to MEMS fabrication. As a result, viscous loss in the flow field and heat transfer to the nozzle wall can strongly influence nozzle performance, namely, thrust force and specific impulse. To accurately understand the flow field inside the micronozzle and how the highly thermal conductive silicon wall interacts with gas flow, a numerical simulation that couples fluid dynamics field and solid heat transfer field is employed in the research. The influence of different structural parameters on micronozzle performance is then investigated to set a basis for design optimization. The optimum design of the linear expander micronozzle is obtained through constrained optimization by linear approximation. To further improve micronozzle performance, the bell-shaped expander is adapted. The optimization result shows that the bell-shaped expander is not suitable for micronozzle featuring 2D Laval configuration, and the reason behind the phenomenon is thoroughly discussed.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

Reference28 articles.

1. Propulsion for Cubesats;Lemmer K;Acta Astronaut,2017

2. A review of MEMS micropropulsion technologies for CubeSats and PocketQubes;Silva M;Acta Astronaut,2018

3. Viscous effects on performance of two-dimensional supersonic linear micronozzles;Louisos WF;J Spacecr Rocket,2008

4. Alexeenko A Cardiff E Martinez A Petro A. Film-evaporation MEMS tunable array for picosat propulsion and thermal control. NASA facts. 8 Aug 2015. https://ntrs.nasa.gov/citations/20150016069

5. Alexeenko A Cardiff E Martinez A Petro A. MEMS reaction control and maneuvering for picosat beyond LEO. NASA facts. 20 Apr 2016. https://ntrs.nasa.gov/citations/20160007910

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