Simulating the Chiral Magnetic Wave in a Box System
arXiv:1810.01030 · doi:10.1103/PhysRevC.98.044904
Abstract
The chiral magnetic wave from the interplay between the chiral magnetic effect and the chiral separation effect is simulated in a box system with the periodic boundary condition based on the chiral kinetic equations of motion. Simulation results are compared with available limits from theoretical derivations, and effects of the temperature, the magnetic field, and the specific shear viscosity on the key properties of the chiral magnetic wave are discussed. Our study serves as a baseline for further simulations of chiral anomalies in relativistic heavy-ion collisions.
7 pages, 5 figures
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Cited by in corpus (13)
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- Causality and stability in relativistic viscous non-resistive magneto-fluid dynamics
- Quantum kinetic theory for spin-1/2 fermions in Wigner function formalism
- Chirality Production with Mass Effects-Schwinger Pair Production and the Axial Ward Identity
- Simulating chiral anomalies with spin dynamics
- Berry phase in the phase space worldline representation: the axial anomaly and classical kinetic theory
- Charge asymmetry dependence of the elliptic flow splitting in relativistic heavy-ion collisions
- Search for the chiral magnetic wave using anisotropic flow of identified particles at RHIC
- Recent developments in chiral and spin polarization effects in heavy-ion collisions
- Probing the Chiral Magnetic Wave with charge-dependent flow measurements in Pb-Pb collisions at the LHC
- Covariant Chiral Kinetic Equation in Non-Abelian Gauge field from "covariant gradient expansion"
- Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions
- Efficiency of dynamos from an autonomous generation of chiral asymmetry