Kinematic scaling relations of CALIFA galaxies: A dynamical mass proxy for galaxies across the Hubble sequence
E. Aquino-Ort\'iz, O. Valenzuela, S. F. S\'anchez, H., Hern\'andez-Toledo, V. \'Avila-Reese, G. van de Ven, A. Rodr\'iguez-Puebla,, L. Zhu, B. Mancillas, M. Cano-D\'iaz, R. Garc\'ia-Benito

TL;DR
This study demonstrates that a combined kinematic parameter, $S_K$, provides a universal and tight scaling relation with stellar mass across different galaxy types, serving as an efficient dynamical mass proxy.
Contribution
The paper introduces and calibrates the $S_K$ parameter as a new, unified dynamical mass proxy applicable to all galaxy types, reducing scatter compared to traditional relations.
Findings
$S_K$ correlates tightly with stellar mass for all galaxy types.
$S_K$ reduces scatter compared to Tully-Fisher and Faber-Jackson relations.
The $S_K$ proxy accurately estimates central dynamical mass within 0.15 dex.
Abstract
We used ionized gas and stellar kinematics for 667 spatially resolved galaxies publicly available from the Calar Alto Legacy Integral Field Area survey (CALIFA) 3rd Data Release with the aim of studying kinematic scaling relations as the Tully Fisher (TF) relation using rotation velocity, , the Faber Jackson (FJ) relation using velocity dispersion, , and also a combination of and through the parameter defined as with constant . Late-type and early-type galaxies reproduce the TF and FJ relations. Some early-type galaxies also follow the TF relation and some late-type galaxies the FJ relation, but always with larger scatter. On the contrary, when we use the parameter, all galaxies, regardless of the morphological type, lie on the same scaling relation, showing a tight correlation with the…
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