English

Frequency response of time-delay interferometry for space-based gravitational wave antennas

General Relativity and Quantum Cosmology 2019-09-25 v3 Instrumentation and Methods for Astrophysics

Abstract

Space-based gravitational wave detectors cannot keep rigid structures and precise arm length equality, so the precise equality of detector arms which is required in a ground-based interferometer to cancel the overwhelming laser noise is impossible. The time-delay interferometry method is applied to unequal arm lengths to cancel the laser frequency noise. We give analytical formulas of the averaged response functions for tensor, vector, breathing and longitudinal polarizations in different TDI combinations, and obtain their asymptotic behaviors. At low frequencies, fff\ll f_*, the averaged response functions of all TDI combinations increase as f2f^2 for all six polarizations. The one exception is the averaged response functions of ζ\zeta for all six polarizations increase as f4f^4 in the equilateral-triangle case. At high frequencies, fff\gg f_*, the averaged response functions of all TDI combinations for the tensor and breathing modes fall off as 1/f21/f^2, the averaged response functions of all TDI combinations for the vector mode fall off as ln(f)/f2\ln(f)/f^2 , and the averaged response functions of all TDI combinations for the longitudinal mode fall as 1/f1/f. We also give LISA and TianQin sensitivity curves in different TDI combinations for tensor, vector, breathing and longitudinal polarizations.

Keywords

Cite

@article{arxiv.1906.10901,
  title  = {Frequency response of time-delay interferometry for space-based gravitational wave antennas},
  author = {Chunyu Zhang and Qing Gao and Yungui Gong and Dicong Liang and Alan J. Weinstein and Chao Zhang},
  journal= {arXiv preprint arXiv:1906.10901},
  year   = {2019}
}

Comments

35 pages, 8 figures

R2 v1 2026-06-23T10:03:51.065Z