Robert W. Harvey

Drift-cyclotron loss-cone instability in 3D simulations of a sloshing-ion simple mirror

Aaron Tran [1], Samuel J. Frank [2], Ari Y. Le [3], Adam J. Stanier [3], Blake A. Wetherton [3], Jan Egedal [1], Douglass A. Endrizzi [2], Robert W. Harvey [4], Yuri V. Petrov [4], Tony M. Qian [1,5], Kunal Sanwalka [1], Jesse Viola [2], Cary B. Forest [1,2], Ellen G. Zweibel [1,6]

Abstract

The kinetic stability of collisionless, sloshing beam-ion (45° pitch angle) plasma is studied in a 3D simple magnetic mirror, mimicking the Wisconsin High-temperature superconductor Axisymmetric Mirror (WHAM) experiment. The collisional Fokker-Planck code CQL3D-m provides a slowing-down beam-ion distribution to initialize the kinetic-ion/fluid-electron code Hybrid-VPIC, which then simulates free plasma decay without external heating or fueling. Over 1-10 $μ$s, drift-cyclotron loss-cone (DCLC) modes grow and saturate in amplitude. DCLC scatters ions to a marginally-stable distribution with gas-dynamic rather than classical-mirror confinement. Sloshing ions can trap cool (low-energy) ions in an electrostatic potential well to stabilize DCLC, but DCLC itself does not scatter sloshing beam-ions into said well. Instead, cool ions must come from external sources such as charge-exchange collisions with a low-density neutral population. Manually adding cool ~1 keV ions improves beam-ion confinement several-fold in Hybrid-VPIC simulations, which qualitatively corroborates prior measurements from real mirror devices with sloshing ions.