English

Electrostatic Model for Antenna Signal Generation From Dust Impacts

Space Physics 2023-04-04 v1 Earth and Planetary Astrophysics Solar and Stellar Astrophysics Plasma Physics

Abstract

Dust impacts on spacecraft are commonly detected by antenna instruments as transient voltage perturbations. The signal waveform is generated by the interaction between the impact-generated plasma cloud and the elements of the antenna-spacecraft system. A general electrostatic model is presented that includes the two key elements of the interaction, namely the charge recollected from the impact plasma by the spacecraft and the fraction electrons and cations that escape to infinity. The clouds of escaping electrons and cations generate induced signals, and their vastly different escape speeds are responsible for the characteristic shape of the waveforms. The induced signals are modeled numerically for the geometry of the system and the location of the impact. The model employs a Maxwell capacitance matrix to keep track of the mutual interaction between the elements of the system. A new reduced-size model spacecraft is constructed for laboratory measurements using the dust accelerator facility. The model spacecraft is equipped with four antennas: two operating in a monopole mode, and one pair configured as a dipole. Submicron-sized iron dust particles accelerated to > 20 km/s are used for test measurements, where the waveforms of each antenna are recorded. The electrostatic model provides a remarkably good fit to the data using only a handful of physical fitting parameters, such as the escape speeds of electrons and cations. The presented general model provides the framework for analyzing antenna waveforms and is applicable for a range of space missions investigating the distribution of dust particles in relevant environments.

Keywords

Cite

@article{arxiv.2304.00452,
  title  = {Electrostatic Model for Antenna Signal Generation From Dust Impacts},
  author = {Mitchell M. Shen and Zoltan Sternovsky and Alessandro Garzelli and David M. Malaspina},
  journal= {arXiv preprint arXiv:2304.00452},
  year   = {2023}
}

Comments

Manuscript accepted online by JGR: Space Physics on 13 August 2021

R2 v1 2026-06-28T09:44:59.432Z