Vortex dynamics and hysteretic flux losses due to pinning

POSTER

Abstract

We use a model of vortex dynamics and collective weak pinning theory to study the residual dissipation due to trapped magnetic flux in a dirty superconductor. Using simple estimates, approximate analytical calculations, and numerical simulations, we make predictions and comparisons with experiments performed in CERN and Cornell on resonant superconducting radio-frequency NbCu, doped-Nb and Nb3Sn cavities. We invoke hysteretic losses originating in a rugged pinning potential landscape to explain the linear behavior of the sensitivity of the residual resistance to trapped magnetic flux as a function of the amplitude of the radio-frequency field. Our calculations also predict and describe the crossover from hysteretic-dominated to viscous-dominated regimes of dissipation. We propose simple formulas describing power losses and crossover behavior, which can be used to guide the tuning of material parameters to optimize cavity performance.

*DBL and JPS were supported by the US National Science Foundation under Award OIA-1549132, the Center for Bright Beams. DH, PNK and ML were supported by DOE Award No. DE-SC0008431, and NSF Award No. NSF PHY-1416318 and NSF PHY-1734189.

Presenters

  • Danilo Liarte

    • Cornell University

Authors

  • Danilo Liarte

    • Cornell University
  • Daniel Hall

    • Cornell University
  • Peter N. Koufalis

    • Cornell University
  • Akira Miyazaki

    • CERN
  • Alen Senanian

    • Cornell University
  • Matthias Ulf Liepe

    • Cornell University
  • James Patarasp Sethna

    • Cornell University