The Evolution of Binaries Embedded Within Common Envelopes

Fuente: arXiv
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Autores principales: Rosselli-Calderon, Alejandra, Yarza, Ricardo, Murguia-Berthier, Ariadna, Rohoza, Valeriia, Everson, Rosa Wallace, Antoni, Andrea, MacLeod, Morgan, Ramirez-Ruiz, Enrico
Formato: Preprint
Publicado: 2024
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author Rosselli-Calderon, Alejandra
Yarza, Ricardo
Murguia-Berthier, Ariadna
Rohoza, Valeriia
Everson, Rosa Wallace
Antoni, Andrea
MacLeod, Morgan
Ramirez-Ruiz, Enrico
author_facet Rosselli-Calderon, Alejandra
Yarza, Ricardo
Murguia-Berthier, Ariadna
Rohoza, Valeriia
Everson, Rosa Wallace
Antoni, Andrea
MacLeod, Morgan
Ramirez-Ruiz, Enrico
contents Triple stellar systems allow us to study stellar processes that cannot be attained in binary stars. The evolutionary phases in which the stellar members undergo mass exchanges can alter the hierarchical layout of these systems. Yet, the lack of a self-consistent treatment of common-envelope (CE) in triple star-systems hinders the comprehensive understanding of their long-term fate. This letter examines the conditions predicted around binaries embedded within CEs using local 3D hydrodynamical simulations. We explore varying the initial binary separation, the flow Mach number, and the background stellar density gradients as informed by a wide array of CE conditions, including those invoked to explain the formation of the triple system hosting PSR J0337+1715. We find that the stellar density gradient governs the gaseous drag force, which determines the final configuration of the embedded binary. We observe a comparable net drag force on the center of mass but an overall reduction in the accretion rate of the binary compared to the single object case. We find that for most CE conditions, and in contrast to the uniform background density case, the binary orbital separation increases with time, softening the binary and preventing it from subsequently merging. We conclude that binaries spiraling within CEs become more vulnerable to be disrupted by tidal interactions. This can have profound implications on the final outcomes of triple star-systems.
format Preprint
id arxiv_https___arxiv_org_abs_2404_08037
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Evolution of Binaries Embedded Within Common Envelopes
Rosselli-Calderon, Alejandra
Yarza, Ricardo
Murguia-Berthier, Ariadna
Rohoza, Valeriia
Everson, Rosa Wallace
Antoni, Andrea
MacLeod, Morgan
Ramirez-Ruiz, Enrico
Solar and Stellar Astrophysics
Astrophysics of Galaxies
High Energy Astrophysical Phenomena
Triple stellar systems allow us to study stellar processes that cannot be attained in binary stars. The evolutionary phases in which the stellar members undergo mass exchanges can alter the hierarchical layout of these systems. Yet, the lack of a self-consistent treatment of common-envelope (CE) in triple star-systems hinders the comprehensive understanding of their long-term fate. This letter examines the conditions predicted around binaries embedded within CEs using local 3D hydrodynamical simulations. We explore varying the initial binary separation, the flow Mach number, and the background stellar density gradients as informed by a wide array of CE conditions, including those invoked to explain the formation of the triple system hosting PSR J0337+1715. We find that the stellar density gradient governs the gaseous drag force, which determines the final configuration of the embedded binary. We observe a comparable net drag force on the center of mass but an overall reduction in the accretion rate of the binary compared to the single object case. We find that for most CE conditions, and in contrast to the uniform background density case, the binary orbital separation increases with time, softening the binary and preventing it from subsequently merging. We conclude that binaries spiraling within CEs become more vulnerable to be disrupted by tidal interactions. This can have profound implications on the final outcomes of triple star-systems.
title The Evolution of Binaries Embedded Within Common Envelopes
topic Solar and Stellar Astrophysics
Astrophysics of Galaxies
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2404.08037