logo
ResearchBunny Logo
How turbulence spreading improves power handling in quiescent high confinement fusion plasmas

Physics

How turbulence spreading improves power handling in quiescent high confinement fusion plasmas

Z. Li, X. Chen, et al.

This research showcases how pedestal turbulence can significantly increase the heat flux width in the scrape-off-layer of quiescent high confinement mode plasmas, surpassing neoclassical predictions. Conducted by a team at General Atomics and Lawrence Livermore National Laboratory, it emphasizes the potential of turbulent pedestals for future fusion devices.

00:00
00:00
~3 min • Beginner • English
Abstract
Viable magnetic fusion devices necessitate combining good confinement with effective power flux handling. A major concern for ITER, and devices beyond, is the divertor heat load width, which sets peak boundary heat loads on the plasma-facing materials. Current estimates of the heat flux width are narrow for future reactors. Here, we demonstrate how pedestal turbulence can expand into, or entrain, the stable scrape-off-layer and so broaden the heat flux width beyond these neoclassical predictions. Employing combined theoretical, computational, and experimental approaches, we focus on quiescent high confinement discharges on the DIII-D tokamak, but the results are of broader significance. Our findings uncover common trends in the edge turbulence intensity flux, the pressure perturbation skewness, and the turbulence mixing length, which together determine the heat flux width. This research demonstrates the physics of scrape-off-layer broadening by turbulence and highlights the promise of a turbulent pedestal for successful core-edge integration in ITER and future fusion devices.
Publisher
Communications Physics
Published On
Mar 15, 2024
Authors
Zeyu Li, Xi Chen, Patrick H. Diamond, Xueqiao Xu, Xijie Qin, Huiqian Wang, Filippo Scotti, Rongjie Hong, Guanying Yu, Zheng Yan, Filipp Khabanov, George R. McKee
Tags
magnetic fusion
pedestal turbulence
heat flux
scrape-off-layer
quiescent high confinement mode
DIII-D tokamak
core-edge integration
Listen, Learn & Level Up
Over 10,000 hours of research content in 25+ fields, available in 12+ languages.
No more digging through PDFs, just hit play and absorb the world's latest research in your language, on your time.
listen to research audio papers with researchbunny