4.4 Article

Source term method for binary neutron stars initial data

期刊

CLASSICAL AND QUANTUM GRAVITY
卷 38, 期 13, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.1088/1361-6382/abfc29

关键词

source term method; binary neutron stars; initial data; Poisson solvers

资金

  1. Students Pushing Innovation (SPIN) program in National Center for Supercomputing Applications (NCSA), University of Illinois at Urbana-Champaign
  2. NSF [OAC-2004879, OAC-1550514, ACI-1238993, PHY-1662211, PHY-2006066]
  3. NASA [80NSSC17K0070]
  4. National Science Foundation [ACI-1238993, OCI-0725070]
  5. National Geospatial-Intelligence Agency
  6. State of Illinois

向作者/读者索取更多资源

A new method is proposed to solve the initial condition problem for a binary neutron star system, using source terms to address boundary conditions and achieving convergence through two-dimensional tests and three-dimensional simulations. By comparing the results with an existing solver, the method demonstrates accuracy to approximately 1% and can be applied to other problems with non-smooth solutions like magnetized neutron stars.
The initial condition problem for a binary neutron star system requires a Poisson equation solver for the velocity potential with a Neumann-like boundary condition on the surface of the star. Difficulties that arise in this boundary value problem are: (a) the boundary is not known a priori, but constitutes part of the solution of the problem; (b) various terms become singular at the boundary. In this work, we present a new method to solve the fluid Poisson equation for irrotational/spinning binary neutron stars. The advantage of the new method is that it does not require complex fluid surface fitted coordinates and it can be implemented in a Cartesian grid, which is a standard choice in numerical relativity calculations. This is accomplished by employing the source term method proposed by Towers, where the boundary condition is treated as a jump condition and is incorporated as additional source terms in the Poisson equation, which is then solved iteratively. The issue of singular terms caused by vanishing density on the surface is resolved with an additional separation that shifts the computation boundary to the interior of the star. We present two-dimensional tests to show the convergence of the source term method, and we further apply this solver to a realistic three-dimensional binary neutron star problem. By comparing our solution with the one coming from the initial data solver cocal, we demonstrate agreement to approximately 1%. Our method can be used in other problems with non-smooth solutions like in magnetized neutron stars.

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