Abstract

The National Spherical Torus Experiment (NSTX) has undergone a major upgrade, and the NSTX Upgrade (NSTX-U) Project was completed in the summer of 2015. NSTX-U first plasma was subsequently achieved, diagnostic and control systems have been commissioned, the H-mode accessed, magnetic error fields identified and mitigated, and the first physics research campaign carried out. During ten run weeks of operation, NSTX-U surpassed NSTX record pulse-durations and toroidal fields (TF), and high-performance ~1 MA H-mode plasmas comparable to the best of NSTX have been sustained near and slightly above the n = 1 no-wall stability limit and with H-mode confinement multiplier H98y,2 above 1. Transport and turbulence studies in L-mode plasmas have identified the coexistence of at least two ion-gyro-scale turbulent micro-instabilities near the same radial location but propagating in opposite (i.e. ion and electron diamagnetic) directions. These modes have the characteristics of ion-temperature gradient and micro-tearing modes, respectively, and the role of these modes in contributing to thermal transport is under active investigation. The new second more tangential neutral beam injection was observed to significantly modify the stability of two types of Alfven eigenmodes. Improvements in offline disruption forecasting were made in the areas of identification of rotating MHD modes and other macroscopic instabilities using the disruption event characterization and forecasting code. Lastly, the materials analysis and particle probe was utilized on NSTX-U for the first time and enabled assessments of the correlation between boronized wall conditions and plasma performance. These and other highlights from the first run campaign of NSTX-U are described.

Highlights

  • The National Spherical Torus Experiment (NSTX) has undergone a major upgrade to become NSTX Upgrade (NSTXU)

  • The significantly larger ohmic solenoid flux available in NSTX Upgrade (NSTX-U) combined with higher Te and 50% higher toroidal fields (TF) at fixed major radius resulted in a factor of 5 increase in L-mode flat-top pulse duration

  • For the results described in this paper, approximately 700 NSTX-U discharges used neutral beam injector (NBI) heating, 290 used some combination of the first and second NBI during a pulse, and only nine shots used only second NBI sources during a pulse

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Summary

Introduction

The National Spherical Torus Experiment (NSTX) has undergone a major upgrade to become NSTX Upgrade (NSTXU). During the past two years the Upgrade Project was completed, first plasma was achieved, diagnostic and control systems were commissioned, error fields (EFs) corrected and mitigated, the H-mode accessed (see figure 1, lower panel), and the first physics research campaign carried out. H-mode access became routine, and more than 30 machine proposals for commissioning major capabilities and several physics experiments were carried out as described below. Results from the initial machine commissioning and plasma scenario development, and highlights from physics experiments and modeling carried out for NSTX-U are described below.

NSTX upgrade commissioning and scenario development
Energetic particles
Transport and turbulence
Macroscopic stability
Boundary science
Solenoid-free plasma start-up
Findings
Summary
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