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Title: Impact of pedestal density gradient and collisionality on ELM dynamics

Journal Article · · Physics of Plasmas
DOI:https://doi.org/10.1063/5.0111669· OSTI ID:1902015

BOUT++ turbulence simulations are conducted to capture the underlying physics of small ELM characteristics achieved by increasing separatrix density via controlling strike points from vertical to horizontal divertor plates for three EAST discharges. BOUT++ linear simulations show that the most unstable modes change from high-n ideal ballooning modes to intermediate-n peeling–ballooning modes and eventually to peeling–ballooning stable plasmas in the pedestal. Nonlinear simulations show that the fluctuation is saturated at a high level for the lowest separatrix density. The ELM size decreases with increasing separatrix density, until the fraction of this energy lost during the ELM crash becomes less than 1% of the pedestal stored energy, leading to small ELMs. Simulations indicate that small ELMs can be triggered either by the marginally peeling–ballooning instability near the peak pressure gradient position inside the pedestal or by a local instability in the pedestal foot with a larger separatrix density gradient. The pedestal collisionality scan for type-I ELMs with steep pedestal density gradient shows that both linear growth rate and ELM size decrease with increasing collisionality. On the contrary, the pedestal collisionality and pedestal density width scan with a weak pedestal density gradient indicate small ELMs can either be triggered by a high-n ballooning mode or by a low-n peeling mode in a low collisionality region 0.04–0.1. We report the simulations indicate the weaker the linear unstable modes near marginal stability with small linear growth rate, the lower nonlinearly saturated fluctuation intensity and the smaller turbulence spreading from the linear unstable zone to stable zone in the nonlinear saturation phase, leading to small ELMs.

Research Organization:
Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)
Sponsoring Organization:
USDOE National Nuclear Security Administration (NNSA); Hefei Science Center, CAS; National Key Research and Development Program of China
Grant/Contract Number:
AC52-07NA27344; 2021HSC-UE014; 2017YFE0301206; 2017YFE0300402; 2017YFE0301100; LLNL-JRNL-837352
OSTI ID:
1902015
Alternate ID(s):
OSTI ID: 1902553
Report Number(s):
LLNL-JRNL-837352; 1057140; TRN: US2311164
Journal Information:
Physics of Plasmas, Vol. 29, Issue 12; ISSN 1070-664X
Publisher:
American Institute of Physics (AIP)Copyright Statement
Country of Publication:
United States
Language:
English

References (23)

Integrated modeling applications for tokamak experiments with OMFIT journal July 2015
Developing a physics understanding of the quasi-continuous exhaust regime: pedestal profile and ballooning stability analysis journal May 2022
Promising High-Confinement Regime for Steady-State Fusion journal June 2019
Reconstruction of current profile parameters and plasma shapes in tokamaks journal November 1985
Pedestal conditions for small ELM regimes in tokamaks journal April 2006
Simulations of tokamak boundary plasma turbulence transport in setting the divertor heat flux width journal October 2019
Grassy-ELM regime with edge resonant magnetic perturbations in fully noninductive plasmas in the DIII-D tokamak journal July 2018
Inter-ELM Power Decay Length for JET and ASDEX Upgrade: Measurement and Comparison with Heuristic Drift-Based Model journal November 2011
Prediction of divertor heat flux width for ITER using BOUT++ transport and turbulence module journal February 2019
New H-mode regimes with small ELMs and high thermal confinement in the Joint European Torus journal March 2022
Impact of the pedestal plasma density on dynamics of edge localized mode crashes and energy loss scaling journal December 2014
Dependence on plasma shape and plasma fueling for small edge-localized mode regimes in TCV and ASDEX Upgrade journal June 2019
Characteristics of type I ELM energy and particle losses in existing devices and their extrapolation to ITER journal August 2003
Drift reduced Landau fluid model for magnetized plasma turbulence simulations in BOUT++ framework journal October 2021
Quantifying heat and particle flux to primary and secondary divertors for various types of edge-localized-modes journal May 2022
Characteristics of grassy ELMs and their impact on the divertor heat flux width journal August 2022
Achieving a robust grassy-ELM operation regime in CFETR journal February 2020
Heuristic drift-based model of the power scrape-off width in low-gas-puff H-mode tokamaks journal December 2011
Edge-localized-mode simulation in CFETR steady-state scenario journal December 2021
Six-field two-fluid simulations of peeling–ballooning modes using BOUT++ journal May 2013
Scaling studies of the high mode pedestal journal May 1998
Chapter 4: Power and particle control journal June 2007
Integrated fusion simulation with self-consistent core-pedestal coupling journal April 2016

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