PaperPanorama

Nuclear Theory·nucl-th

Monday·August 20, 2018

3 papers2 primary·1 cross-listed

  1. 01

    Convergence and efficiency of angular momentum projection for many-body systems

    Calvin W. Johnson🇺🇸 · Changfeng Jiao🇺🇸

    In many so-called "beyond-mean-field" many-body methods, one creates symmetry-breaking states and then projects out states with good quantum number(s); the most important example is angular momentum. Motivated by the computational intensity of symmetry restoration, we investigate the numerical convergence of two competing methods for angular momentum projection with rotations over Euler angles, the textbook-standard projection through quadrature, and a recently introduced projection through linear algebra. We find well-defined patterns of convergence with increasing number of mesh points (for quadrature) and cut-offs (for linear algebra). Because the method of projection through linear algebra requires inverting matrices generated on a mesh of Euler angles, we discuss two methods for robustly reducing the number of required evaluations. Reviewing the literature, we find our inversion involving rotations about the -axis is equivalent to trapezoidal "quadrature" commonly used as well as Fomenko projection used for particle-number projection. The efficiency depends upon the number of angular momentum to be projected, but in general inversion methods, including Fomenko projection/trapezoidal "quadrature" dramatically improve the efficiency.

    nucl-thphysics.comp-phJ.Phys.G(2019)·17 citations
  2. 02

    Large Baryon Densities Achievable in High Energy Heavy Ion Collisions Outside the Central Rapidity Region

    Ming Li🇺🇸 · Joseph I. Kapusta🇺🇸

    Nuclei are nearly transparent to each other when they collide at high energy, but the collisions do produce high energy density matter in the central rapidity region where most experimental measurements are made. What happens to the receding nuclear fireballs? We calculate the energy loss of the nuclei using the color glass condensate model. We then use a simple space-time picture of the collision to calculate the baryon and energy densities of the receding fireballs. For central collisions of large nuclei at the BNL Relativistic Heavy Ion Collider and the CERN Large Hadron Collider we find baryon densities more than ten times that of normal nuclear matter. These results provide initial conditions for subsequent hydrodynamic evolution and could test the equation of state at very high baryon densities.

    nucl-thPRC(2019)·34 citations

Affiliations

first authorsco-authorsvia INSPIRE