Calibrating the Tully-Fisher Relation to Measure the Hubble Constant
Abstract
Boubel et al. 2024 (B24) recently used the Tully-Fisher (TF) relation to measure calibrated distances in the Hubble flow and found km/s/Mpc. The large systematic uncertainty was the result of propagating the conflict between two sources of empirical distance calibration: a difference in zeropoint when calibrating the TF relation with Type Ia supernovae (SNe Ia) versus Cepheids and Tip-of-the-Red-Giant-Branch (TRGB) and an apparent difference in zeropoint between two distinct TRGB datasets. We trace the SN Ia-based calibration used in the TF analysis to a study where was fixed to 70 km/s/Mpc rather than measured, (with host distances derived from redshifts and the Hubble law), thus introducing a discrepancy with the other empirically calibrated indicators. In addition, we trace the difference in TRGB zeropoints to a miscalibration of mag that should be mag. Using the consistent Cepheid and TRGB calibration from B24 while removing the problematic data reduces the systematic error by a factor of two and results in km/s/Mpc. This measurement is consistent with previous determinations of using the TF relation. We also show that most determinations of measurements that replace Type Ia supernovae measurements with another far-field distance indicator yield km/s/Mpc, reinforcing previous findings that the Hubble tension is not tied to any one distance indicator.
Keywords
Cite
@article{arxiv.2412.08449,
title = {Calibrating the Tully-Fisher Relation to Measure the Hubble Constant},
author = {Daniel Scolnic and Paula Boubel and Jakob Byrne and Adam G. Riess and Gagandeep S. Anand},
journal= {arXiv preprint arXiv:2412.08449},
year = {2024}
}
Comments
Comments very welcome. Submitting to Research Notes of the AAS next week