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DIII-D High Field Side Lower Hybrid Current Drive Experiment Overview

  • Stephen J. Wukitch
  • , Mirela Cengher
  • , Evan Leppink
  • , Yijun Lin
  • , Robert I. Pinsker
  • , Grant Rutherford
  • , Andrew Seltzman
  • , Igor Bykov
  • , Jeffrey Doody
  • , Ivan Garcia
  • , Malcolm Gould
  • , Rick Leccacorvi
  • , Christopher Murphy
  • , Alexander Nagy
  • , Samuel Pierson
  • , James Ridzon
  • , Kyle Teixeira
  • , Rui Vieira

Research output: Contribution to journalConference articlepeer-review

Abstract

In preparation for high field side lower hybrid current drive (HFS LHCD) experiments in DIII-D, the HFS LHCD was to be commissioned and physics experiments commence once the system operated up to 300 kW for 0.5 s. The initial physics experiments sought to characterize coupling, wave propagation, and driven current measurements. In HFS LHCD first campaign, the maximum power was limited to <200 kW due to waveguide pressure leaks limiting the number of available modules and power per module. Here we summarize commissioning progress and initial physics observations. The HFS LHCD coupler was optimized for high qmin, DIII-D discharges where efficient off-axis current at r/a~0.6-0.8 is desired. The coupler n|| spectrum is peaked at 2.7 and is predicted to generate ~0.14 MA/MW coupled for 1.6 MW injected. In preparation, the HFS scrape-off layer density profile was characterized and found to have steeper profiles and lower fluctuation levels than the low field side. Furthermore, the HFS SOL density profile can be accurately predicted using global plasma quantities using machine learning. Thus far, one module has injected ~100 kW for 0.5 s with <5% reflected power. Nonthermal electrons have been observed on lower frequency channels of the electron cyclotron emission radiometer correlated with the LH power indicating core wave absorption. To avoid 30R neutral beam heat flux, a split launcher is proposed to avoid the high heat flux region while maintaining power spectrum and directivity.

Original languageEnglish (US)
Article number02023
JournalEPJ Web of Conferences
Volume346
DOIs
StatePublished - Jan 7 2026
Event25th Topical Conference on Radio-Frequency Power in Plasmas, RFPPC 2025 - Schloss Hohenkammer, Germany
Duration: May 19 2025May 22 2025

All Science Journal Classification (ASJC) codes

  • General Physics and Astronomy

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