This paper presents a multi-machine, multi-parameter scaling law for the n = 2 core resonant error field threshold that leads to field penetration, locked modes, and disruptions. Here, n is the toroidal harmonic of the non-axisymmetric error field (EF). While density scalings have been reported by individual tokamaks in the past, this work performs a regression across a comprehensive range of densities, toroidal fields, and pressures accessible across three devices using a common metric to quantify the EF in each device. The metric used is the amount of overlap between an EF and the spectrum that drives the largest linear ideal MHD resonance, known as the "dominant mode overlap". This metric, which takes into account both the external field and plasma response, is scaled against experimental parameters known to be important for the inner layer physics. These scalings validate non-linear MHD simulation scalings, which are used to elucidate the dominant inner layer physics. Both experiments and simulations show that core penetration thresholds for EFs with toroidal mode number n = 2 are of the same order as the n = 1 thresholds that are considered most dangerous on current devices. Both n = 1 and n = 2 thresholds scale to values within the ITER design tolerances, but data from additional devices with a range of sizes are needed in order to increase confidence in quantitative extrapolations of n = 2 thresholds to ITER.

Empirical scaling of the n = 2 error field penetration threshold in tokamaks

Piovesan P;
2020

Abstract

This paper presents a multi-machine, multi-parameter scaling law for the n = 2 core resonant error field threshold that leads to field penetration, locked modes, and disruptions. Here, n is the toroidal harmonic of the non-axisymmetric error field (EF). While density scalings have been reported by individual tokamaks in the past, this work performs a regression across a comprehensive range of densities, toroidal fields, and pressures accessible across three devices using a common metric to quantify the EF in each device. The metric used is the amount of overlap between an EF and the spectrum that drives the largest linear ideal MHD resonance, known as the "dominant mode overlap". This metric, which takes into account both the external field and plasma response, is scaled against experimental parameters known to be important for the inner layer physics. These scalings validate non-linear MHD simulation scalings, which are used to elucidate the dominant inner layer physics. Both experiments and simulations show that core penetration thresholds for EFs with toroidal mode number n = 2 are of the same order as the n = 1 thresholds that are considered most dangerous on current devices. Both n = 1 and n = 2 thresholds scale to values within the ITER design tolerances, but data from additional devices with a range of sizes are needed in order to increase confidence in quantitative extrapolations of n = 2 thresholds to ITER.
2020
Istituto per la Scienza e Tecnologia dei Plasmi - ISTP
Inglese
60
8
086010-1
086010-15
15
https://iopscience.iop.org/article/10.1088/1741-4326/ab94f8/meta
Sì, ma tipo non specificato
locked modes
error field correction
tokamak
ITER
Article Number: 086010 / eISSN: 1741-4326 / http://www.scopus.com/inward/record.url?eid=2-s2.0-85086570581&partnerID=q2rCbXpz / This work was supported by the U.S. Department ofEnergy Office of Science Office of Fusion Energy Sci-ences using the DIII-D National Fusion Facility and Alc-ator C-Mod, both DOE Office of Science user facilities,under Awards DE-FC02-04ER54698, DE-AC02-09CH11466and DE-FC02-99ER54512. The work was also suppor-ted by the National Key R&D Program of China underGrant No. 2017YFE0301100, the Czech Science Founda-tion (GA CR) under the Grant Number 19-15229S, and byMEYS of CR projects number 8D15001 and LM2015045.The work has been carried out within the framework ofthe project COMPASS-U: Tokamak for cutting-edge fusionresearch (No. CZ.02.1.01/0.0/0.0/16_019/0000768) and co-funded from European structural and investment funds. Thiswork has been carried out within the framework of theEUROfusion Consortium and has received funding from theEURATOM research and training program 2014-2018 and2019-2020 under Grant Agreement No. 633053.
14
info:eu-repo/semantics/article
262
Logan, Nc; Park, Jk; Hu, Q; Pazsoldan, C; Markovic, T; Wang, H; In, Y; Piron, L; Piovesan, P; Myers, Ce; Maraschek, M; Wolfe, Sm; Strait, Ej; Munarett...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
none
   Implementation of activities described in the Roadmap to Fusion during Horizon 2020 through a Joint programme of the members of the EUROfusion consortium
   EUROfusion
   H2020
   633053
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/384816
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 40
  • ???jsp.display-item.citation.isi??? 39
social impact