Signed Sound-Speed Deformations of BSk24-Anchored Barotropes: Neutron-Star Response
Ioannis Papathanasiou
Abstract
Background: Localized structure in the equilibrium squared sound speed can affect neutron-star observables, but modifying dP/dε requires thermodynamically consistent reconstruction and assessment over the complete declared domain. Purpose: We quantify the response to positive and negative localized sound-speed changes around a unified BSk24 baseline while keeping the deformation geometry, admission criteria, reconstruction, and fixed-mass comparison protocol fixed. Method: A Gaussian profile with quintic smootherstep activation is added to c s2. Proposals violating P>0 or 0<c s2≤1 anywhere in the retained domain are rejected before reconstruction. Passing cases are reconstructed as effective cold one-fluid barotropes and evolved with the Tolman-Oppenheimer-Volkoff and tidal equations. Results: The A=0 case reproduces the undeformed control exactly. A localized change produces a persistent pressure offset, relocates the fixed-mass central state, and yields a mass-dependent, nonlinear, sign-asymmetric response. For A=-0.8 and +0.8, respectively, ΔΛ/Λ0=(-46.02\%,+35.33\%) at 1.4\,M and (-63.52\%,+87.17\%) at 2.0\,M. The reached stiffened feature remains core connected at the reporting endpoints, whereas the softened feature becomes an off-center shell at high mass. Conclusions: These phenomenological BSk24-anchored effective barotropes illustrate how a local sound-speed intervention propagates through thermodynamic reconstruction and stellar structure. They are not BSk24 predictions or evidence for a microscopic composition or phase transition.
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