Spacecraft heat shield study in the DIII-D tokamak
Abstract
We report a new experimental platform developed at the DIII-D National Fusion Facility to investigate carbon ablation and spallation under extreme heat fluxes relevant to fusion plasma-facing components and high-enthalpy atmospheric entry. Carbon samples were exposed to parallel heat fluxes of -- in the scrape-off layer using two complementary approaches: stationary carbon rods inserted near the divertor strike point and slow-launch carbon pellets injected vertically into the edge and core plasma. Pellets penetrating the core experienced heat fluxes approximately an order of magnitude higher. The conditions reproduce key aspects of the shock-layer environment encountered by the Galileo probe during entry into Jupiter's atmosphere. Fast visible imaging, divertor spectroscopy, infrared thermography, CO interferometry, and post-exposure profilometry provided measurements of ablation rates, surface recession, and temperature evolution. Measured mass-loss rates of -- agree with semi-empirical aerospace ablation models, while wedge-shaped rods exhibited greater ablation than cylindrical and concave samples. UEDGE-DUSTT simulations incorporating parallel plasma flows, forces, and ablation-cloud shielding reproduce the measured pellet trajectories and ablation timescales. These results establish tokamak plasma as a high-heat-flux environment for validating carbon ablation models and studying material response and impurity dynamics in reactor-relevant divertor plasmas.
Keywords
Cite
@article{arxiv.2607.23895,
title = {Spacecraft heat shield study in the DIII-D tokamak},
author = {Dmitri M. Orlov and Evdokiya G. Kostadinova and Igor Bykov and Dmitri L. Rudakov and Roman Smirnov and Jayson Barr and Gabrielle Bladon and Alessandro Bortolon and Justin Burzachiello and Lane Carlsson and Colin Chrystal and Jason Escalera and Jessica Eskew and Graeson Griffin and Michael O. Hanson and Georg Herdrich and Jeffrey Herfindal and Al Hyatt and Truell Hyde and Charles Lasnier and Claudio Marini and Lorin Matthews and Adam McLean and Christopher A. Mehta and Renato Perillo and Jens Schmidt and Filipo Scotti and Zola Spence and Hadith Taheri and Michael van Zeeland and Caitlyn Villareal and Huiqian Wang and Robert Wilcox and Theresa Wilks and Nandini Yadav and Daniel Zubovic},
journal= {arXiv preprint arXiv:2607.23895},
year = {2026}
}