Plasma noise in TianQin time delay interferometry
Abstract
TianQin is a proposed geocentric space-based gravitational wave observatory mission, which requires time-delay interferometry (TDI) to cancel laser frequency noise. With high demands for precision, solar-wind plasma environment at km above the Earth may constitute a non-negligible noise source to laser interferometric measurements between satellites, as charged particles perturb the refractivity along light paths. In this paper, we first assess the plasma noises along single links from space-weather models and numerical orbits, and analyze the time and frequency domain characteristics. Particularly, to capture the plasma noise in the entire measurement band of Hz, we have performed additional space-weather magnetohydrodynamic simulations in finer spatial and temporal resolutions and utilized Kolmogorov spectra in high-frequency data generation. Then we evaluate the residual plasma noises of the first- and second-generation TDI combinations. Both analytical and numerical estimations have shown that under normal solar conditions the plasma noise after TDI is less than the secondary noise requirement. Moreover, TDI is shown to exhibit moderate suppression on the plasma noise below Hz due to noise correlation between different arms, when compared with the secondary noise before and after TDI.
Cite
@article{arxiv.2210.03950,
title = {Plasma noise in TianQin time delay interferometry},
author = {Yi-De Jing and Lu Zheng and Shutao Yang and Xuefeng Zhang and Lingfeng Lu and Binbin Tang and Wei Su},
journal= {arXiv preprint arXiv:2210.03950},
year = {2022}
}
Comments
12 pages, 15 figures, accepted by Phys. Rev. D