General Relativity and Quantum Cosmology
[Submitted on 17 Jun 2024 (v1), last revised 18 Jun 2024 (this version, v2)]
Title:Enhancing noise characterization with robust time delay interferometry combination
View PDF HTML (experimental)Abstract:Time delay interferometry (TDI) is essential for suppressing laser frequency noise and achieving the targeted sensitivity for space-borne gravitational wave (GW) missions. In Paper I, we examined the performance of the fiducial second-generation TDI Michelson configuration versus an alternative, the hybrid Relay, in noise suppression and data analysis. The results showed that both TDI schemes have comparable performances in mitigating laser and clock noises. However, when analyzing chirp signal from the coalescence of massive binary black holes, the Michelson configuration becomes inferior due to its vulnerable T channel and numerous null frequencies. In contrast, the hybrid Relay is more robust in dynamic unequal-arm scenarios. In this work, we further investigate the noise characterization capabilities of these two TDI configurations. Our investigations demonstrate that hybrid Relay achieves more robust noise parameter inference than the Michelson configuration. Moreover, the performance could be enhanced by replacing the T channel of hybrid Relay with the null stream from Sagnac configuration. The combined data streams, two science observables from the hybrid Relay and a null observable from the Sagnac, could form an optimal dataset for characterizing noises.
Submission history
From: Gang Wang [view email][v1] Mon, 17 Jun 2024 08:11:26 UTC (4,091 KB)
[v2] Tue, 18 Jun 2024 11:05:42 UTC (4,091 KB)
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