Optimized fringe sensors for the VLTI next generation instruments
N. Blind, O. Absil, J.-B. Lebouquin, J.-P. Berger, A. Chelli

TL;DR
This paper defines optimal fringe sensor concepts for next-generation ground-based interferometers with 4 to 6 telescopes, emphasizing sensitivity, robustness, and real-time performance under varying atmospheric conditions.
Contribution
It introduces new fringe sensor designs based on simultaneous data acquisition and moderately redundant schemes, improving sensitivity and robustness for multi-telescope arrays.
Findings
Achieving at least 90% fringe tracking time at limiting magnitudes of 7.5 and 9.5.
Simultaneous data collection outperforms multi-step phase and group delay measurements.
Moderately redundant pairwise schemes enhance sensitivity and robustness.
Abstract
Context. With the arrival of the next generation of ground-based imaging interferometers combining from 4 to possibly 6 telescopes simultaneously, there is also a strong need for a new generation of fringe trackers able to cophase such arrays. These instruments have to be very sensitive and to provide robust operations in quickly varying observational conditions. Aims. We aim at defining the optimal characteristics of fringe sensor concepts operating with 4 or 6 telescopes. The current detector limitations impose us to consider solutions based on co-axial pairwise combination schemes. Methods. We independently study several aspects of the fringe sensing process: 1) how to measure the phase and the group delay, and 2) how to combine the telescopes in order to ensure a precise and robust fringe tracking in real conditions. Thanks to analytical developments and numerical simulations,…
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