Study of kink modes and error fields through rotation control with a biased electrode

Experimental studies of MHD modes, including dynamics and stability, using a biased electrode for rotation control on the High Beta Tokamak –- Extended Pulse (HBT-EP) are presented. When the probe is inserted into the edge of the plasma and a voltage applied, the rotation of long-wavelength kink ins...

Full description

Bibliographic Details
Main Author: Stoafer, Christopher Charles
Language:English
Published: 2015
Subjects:
Online Access:https://doi.org/10.7916/D8X92B0D
id ndltd-columbia.edu-oai-academiccommons.columbia.edu-10.7916-D8X92B0D
record_format oai_dc
spelling ndltd-columbia.edu-oai-academiccommons.columbia.edu-10.7916-D8X92B0D2019-05-09T15:15:01ZStudy of kink modes and error fields through rotation control with a biased electrodeStoafer, Christopher Charles2015ThesesPlasma stabilityMagnetohydrodynamicsPlasma (Ionized gases)PhysicsExperimental studies of MHD modes, including dynamics and stability, using a biased electrode for rotation control on the High Beta Tokamak –- Extended Pulse (HBT-EP) are presented. When the probe is inserted into the edge of the plasma and a voltage applied, the rotation of long-wavelength kink instabilities is strongly modified. A large poloidal plasma flow results at the edge, measured with a bi-directional Mach probe with changes in edge kink mode rotation at different biases. This poloidal plasma rotation cannot fully account for the large mode rotation frequency on HBT-EP. By including the electron fluid motion, the mode rotation predictions agree with measurements, indicating that the modes travel with the electron fluid. A GPU-based digital feedback system is used to adjust the probe voltage in real time for controlling both the plasma flow and mode rotation. This active mode rotation control is desirable because it allows for MHD stabilization, as well as studies under conditions of varying mode rotation rates. Mode dynamics were studied using various diagnostics to understand how plasma conditions fluctuate during mode activity and to understand the interaction of the bias probe with the plasma during this activity. Phase-dependent mode behavior was observed, especially at slow mode rotation, which might be attributed to an intrinsic error field or a nonlinear interaction between the bias probe and the mode. Applied resonant magnetic perturbations were used to study the dynamic response of a stable plasma with different mode rotations. At slower rotation, the plasma had a greater response to the perturbations and the plasma reached a saturated response with large perturbations, similar to previous results. At large positive biases, the probe current induces a torque that opposes the natural direction of mode rotation. By applying a sufficiently large torque, a transition is induced into a fast rotation state (both mode and plasma rotation). High poloidal shear flows at the edge were measured in this state, similar to conditions in H-mode plasmas on other devices. The bias required to induce the transition is shown to depend on an applied error field. A technique was established using this transition to determine the natural error field on HBT-EP.Englishhttps://doi.org/10.7916/D8X92B0D
collection NDLTD
language English
sources NDLTD
topic Plasma stability
Magnetohydrodynamics
Plasma (Ionized gases)
Physics
spellingShingle Plasma stability
Magnetohydrodynamics
Plasma (Ionized gases)
Physics
Stoafer, Christopher Charles
Study of kink modes and error fields through rotation control with a biased electrode
description Experimental studies of MHD modes, including dynamics and stability, using a biased electrode for rotation control on the High Beta Tokamak –- Extended Pulse (HBT-EP) are presented. When the probe is inserted into the edge of the plasma and a voltage applied, the rotation of long-wavelength kink instabilities is strongly modified. A large poloidal plasma flow results at the edge, measured with a bi-directional Mach probe with changes in edge kink mode rotation at different biases. This poloidal plasma rotation cannot fully account for the large mode rotation frequency on HBT-EP. By including the electron fluid motion, the mode rotation predictions agree with measurements, indicating that the modes travel with the electron fluid. A GPU-based digital feedback system is used to adjust the probe voltage in real time for controlling both the plasma flow and mode rotation. This active mode rotation control is desirable because it allows for MHD stabilization, as well as studies under conditions of varying mode rotation rates. Mode dynamics were studied using various diagnostics to understand how plasma conditions fluctuate during mode activity and to understand the interaction of the bias probe with the plasma during this activity. Phase-dependent mode behavior was observed, especially at slow mode rotation, which might be attributed to an intrinsic error field or a nonlinear interaction between the bias probe and the mode. Applied resonant magnetic perturbations were used to study the dynamic response of a stable plasma with different mode rotations. At slower rotation, the plasma had a greater response to the perturbations and the plasma reached a saturated response with large perturbations, similar to previous results. At large positive biases, the probe current induces a torque that opposes the natural direction of mode rotation. By applying a sufficiently large torque, a transition is induced into a fast rotation state (both mode and plasma rotation). High poloidal shear flows at the edge were measured in this state, similar to conditions in H-mode plasmas on other devices. The bias required to induce the transition is shown to depend on an applied error field. A technique was established using this transition to determine the natural error field on HBT-EP.
author Stoafer, Christopher Charles
author_facet Stoafer, Christopher Charles
author_sort Stoafer, Christopher Charles
title Study of kink modes and error fields through rotation control with a biased electrode
title_short Study of kink modes and error fields through rotation control with a biased electrode
title_full Study of kink modes and error fields through rotation control with a biased electrode
title_fullStr Study of kink modes and error fields through rotation control with a biased electrode
title_full_unstemmed Study of kink modes and error fields through rotation control with a biased electrode
title_sort study of kink modes and error fields through rotation control with a biased electrode
publishDate 2015
url https://doi.org/10.7916/D8X92B0D
work_keys_str_mv AT stoaferchristophercharles studyofkinkmodesanderrorfieldsthroughrotationcontrolwithabiasedelectrode
_version_ 1719046597093883904