Ionization and neutral gas heating efficiency in radio frequency electrothermal microthrusters: The role of driving frequency

Author:

Leigh Sid1ORCID,Doyle Scott J.2ORCID,Smith Gregory J.3ORCID,Gibson Andrew R.4ORCID,Boswell Rod W.5ORCID,Charles Christine5ORCID,Dedrick James P.1ORCID

Affiliation:

1. York Plasma Institute, School of Physics, Engineering and Technology, University of York 1 , Heslington, York YO10 5DD, United Kingdom

2. Electrical Engineering and Computer Science, University of Michigan 2 , 1301 Beal Ave., Ann Arbor, Michigan 48109-2122, USA

3. Research group PLASMANT, Department of Chemistry, University of Antwerp 3 , Universiteitsplein 1, BE-2610 Antwerp, Belgium

4. Research Group for Biomedical Plasma Technology, Ruhr-Universität Bochum 4 , Universitätstraße 150, 44801 Bochum, Germany

5. Space Plasma, Power and Propulsion Laboratory, Research School of Physics, The Australian National University 5 , Canberra, ACT 2601, Australia

Abstract

The development of compact, low power, charge–neutral propulsion sources is of significant recent interest due to the rising application of micro-scale satellite platforms. Among such sources, radio frequency (rf) electrothermal microthrusters present an attractive option due to their scalability, reliability, and tunable control of power coupling to the propellant. For micropropulsion applications, where available power is limited, it is of particular importance to understand how electrical power can be transferred to the propellant efficiently, a process that is underpinned by the plasma sheath dynamics. In this work, two-dimensional fluid/Monte Carlo simulations are employed to investigate the effects of applied voltage frequency on the electron, ion, and neutral heating in an rf capacitively coupled plasma microthruster operating in argon. Variations in the electron and argon ion densities and power deposition, and their consequent effect on neutral-gas heating, are investigated with relation to the phase-averaged and phase-resolved sheath dynamics for rf voltage frequencies of 6–108 MHz at 450 V. Driving voltage frequencies above 40.68 MHz exhibit enhanced volumetric ionization from bulk electrons at the expense of the ion heating efficiency. Lower driving voltage frequencies below 13.56 MHz exhibit more efficient ionization due to secondary electrons and an increasing fraction of rf power deposition into ions. Thermal efficiencies are improved by a factor of 2.5 at 6 MHz as compared to the more traditional 13.56 MHz, indicating a favorable operating regime for low power satellite applications.

Funder

Engineering and Physical Sciences Research Council

Publisher

AIP Publishing

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