An updated metal-dependent theoretical scenario for Classical Cepheids
Giulia De Somma, Marcella Marconi, Roberto Molinaro, Vincenzo Ripepi,, Silvio Leccia, Ilaria Musella

TL;DR
This paper extends nonlinear pulsation models for Classical Cepheids across various metallicities to refine the distance scale and understand metallicity effects, providing new relations and applying them to Gaia data.
Contribution
It introduces a comprehensive grid of nonlinear Cepheid models with varied metallicity, mass-luminosity relations, and convection parameters, enhancing the theoretical framework for distance measurements.
Findings
Confirmed the reddening of the instability strip with increasing metallicity.
Derived new Period-Luminosity-Color and Period-Wesenheit relations incorporating metallicity.
Compared model predictions with Gaia parallaxes to validate the approach.
Abstract
To properly quantify possible residual systematic errors affecting the Classical Cepheid distance scale, a detailed theoretical scenario is recommended. By extending the set of nonlinear convective pulsation models published for \citep[][]{Desomma2020a} to , and , we provide a detailed homogeneous nonlinear model grid taking into account simultaneous variations of the mass-luminosity relation, the efficiency of super-adiabatic convection and the chemical composition. The dependence of the inferred Period-Radius, Period-Mass-Radius, and Period-Mass-Luminosity-Temperature relations on the input parameters is discussed for both the Fundamental and First Overtone modes. The trend of the instability strip getting redder as the metallicity increases is confirmed for the additional ML assumptions and mixing length values. From the obtained multi-filter light…
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