English

On Approximation Methods in the Study of Boson Stars

High Energy Physics - Phenomenology 2018-12-26 v2 Cosmology and Nongalactic Astrophysics

Abstract

We analyze the accuracy of the variational method in computing physical quantities relevant for gravitationally bound Bose-Einstein condensates. Using a variety of variational ans\"atze found in existing literature, we determine physical quantities and compare them to exact numerical solutions. We conclude that a "linear+exponential" wavefunction proportional to (1+ξ)exp(ξ)(1 + \xi)\exp(-\xi) (where ξ\xi is a dimensionless radial variable) is the best fit for attractive self-interactions along the stable branch of solutions, while for small particle number NN it is also the best fit for repulsive self-interactions. For attractive self-interactions along the unstable branch, a single exponential is the best fit for small NN, while a sech wavefunction fits better for large NN. The Gaussian wavefunction ansatz, which is used often in the literature, is exceedingly poor across most of the parameter space, with the exception of repulsive interactions for large NN. We investigate a "double exponential" ansatz with a free constant parameter, which is computationally efficient and can be optimized to fit the exact solutions in different limits. We show that the double exponential can be tuned to fit the sech ansatz, which is computationally slow. We also show how to generalize the addition of free parameters in order to create more computationally efficient ans\"atze using the double exponential. Determining the best ansatz, according to several comparison parameters, will be important for analytic descriptions of dynamical systems. Finally, we examine the underlying relativistic theory, and critically analyze the Thomas-Fermi approximation often used in the literature.

Keywords

Cite

@article{arxiv.1809.08598,
  title  = {On Approximation Methods in the Study of Boson Stars},
  author = {Joshua Eby and Madelyn Leembruggen and Lauren Street and Peter Suranyi and L. C. R. Wijewardhana},
  journal= {arXiv preprint arXiv:1809.08598},
  year   = {2018}
}

Comments

20 pages, 2 appendices, 4 figures. v2: Citations added, typos corrected

R2 v1 2026-06-23T04:15:21.742Z