Measurement and simulation of small cryogenic neon pellet Ne-I 640 nm photon efficiency during ablation in DIII-D plasma

Author:

Hollmann E. M.1ORCID,Naitlho N.2,Yuan S.2,Samulyak R.2ORCID,Parks P.3ORCID,Shiraki D.4,Herfindal J.4ORCID,Marini C.1ORCID

Affiliation:

1. University of California San Diego, 9500 Gilman Drive, La Jolla, California 92093-0417, USA

2. Stony Brook University, 100 Nicolls Road, Stony Brook, New York 11794, USA

3. General Atomics, PO Box 85608, San Diego, California 92186-5608, USA

4. Oak Ridge National Laboratory, PO Box 2008, Oak Ridge, Tennessee 37831, USA

Abstract

Small (∼1 mm) neon pellet fragments are fired into DIII-D H-mode plasmas, and resulting trajectory-averaged photon efficiencies (neutral neon ionization events for every photon emitted) of [Formula: see text] are estimated for Ne-I 640 nm by dividing the estimated initial pellet fragment mass by the measured number of emitted Ne-I photons. The experiments are modeled by running the Lagrangian particle (LP) fluid/magneto-hydrodynamic pellet code to estimate axial ablation plume neon density profiles and temperature profiles at each pellet position. These solutions are then fed into the PrismSPECT collisional-radiative code, which calculates resulting neon charge states and photon emission rates, giving a profile-average of [Formula: see text]. The burnthrough plasma minor radius predicted by LP ([Formula: see text]) is reasonably close to the experimental observation [Formula: see text]. The modeling indicates that local S/ XB is not constant along the pellet trajectory but tends to increase with increasing ablation rate. Non-equilibrium kinetics are predicted to be very important, while line trapping is predicted to be relatively unimportant (for Ne-I 640 nm S/ XB).

Funder

Fusion Energy Sciences

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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