REVIEW 4 major objections 4 minor 53 references
A comparison of low-n Mercier unstable Wendelstein stellarators and quasi-interchange modes in tokamaks
T0 review · 4 major / 4 minor · reviewed 2026-08-15 · deepseek-v4-flash
Pith's one-line read Mercier-unstable stellarators do not automatically settle into the benign flux-pumping state seen in tokamaks.
desk verdict A careful, honest JOREK study of Mercier-unstable stellarators that reproduces the tokamak-like dynamo but finds crash dynamics rather than sustained flux pumping; the W7-AS comparison is credible if you accept the acknowledged profile assumptions. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The central object is the MHD dynamo: the $(0,0)$ component of the $\boldsymbol{v}\times\mathbf{B}$ electric field induced by an unstable interchange mode, which in tokamak flux-pumping scenarios redistributes the current profile and keeps the safety factor near a rational value. The simulations are reduced viscoresistive MHD runs that include helical mode coupling and fluid compressibility, which the paper shows are necessary to capture the low-$n$ interchange, and they add a background $\mathbf{E}\times\mathbf{B}$ flow to test shear stabilisation of high-$n$ modes. A second load-bearing concept is partial reconnection: when several interchange instabilities overlap, current sheets break the nested flux surfaces locally, altering the local $\iota$ and ejecting core heat, which cuts off the dynamo before it can self-organise.
What would settle it
A concrete test would be a nonlinear simulation of the W7-X-like configuration with parameters moved close to marginal stability and with a small current-drive source added: if the dynamo then persists over a resistive timescale and the core temperature does not crash, the paper's proposed route to stellarator flux pumping is supported, whereas a persisting crash would falsify the claim that missing current sources and marginality explain the absence of a benign state.
Extended reading notes
Core claim
On the paper's own terms, the central claim is that Mercier-unstable Wendelstein configurations do not automatically enter the quasi-stationary, dynamo-sustained state seen in flux-pumping tokamaks. Mercier's criterion—the local stability condition for pressure-driven interchange modes in a toroidal plasma—is violated across most of the W7-X-like volume, and the linearly dominant $(2,3)$ interchange creates an $m=0$, $n=0$ dynamo electric field with the same character as the $(1,1)$ quasi-interchange in tokamaks. But the dynamo is not sustained on the resistive timescale: after about $1.15$ ms, current-sheet formation and reconnection partially reconnect the core, the local $\iota$ is modified toward the $2/3$ rational value, and the core temperature crashes despite heating comparable to experimental power. In the W7-AS case, at the experimental Spitzer resistivity and with an equilibrium $\mathbf{E}\times\mathbf{B}$ flow added to suppress high-$n$ modes, the simulations show multiple competing modes and a dominant $(5,10)$ structure rather than the sustained $(1,2)$ mode seen experimentally; a coherent $(1,2)$ mode appears only transiently, depending on initialization, and the stored thermal energy can be maintained when flows are included. The paper argues that the missing ingredients are a current source or current-control mechanism, which in tokamaks counterbalances the dynamo, and operation near marginal stability so that only a single coupled instability is present.
Load-bearing premise
The paper's central negative result for W7-AS rests on an equilibrium reconstruction that assumes a linear pressure profile $p(s)=p_0(1-s)$ and a hand-adjusted radial electric field; if the true profiles are more peaked, the $(1,2)$ mode might saturate as in the experiment and the proposed explanation for the missing flux-pumping state would not apply.
Editorial extensions
If this is right
- Removing the Mercier constraint in stellarator design does not by itself guarantee a benign saturated state; in the W7-X-like simulation the core temperature drops abruptly on a roughly millisecond timescale.
- A stellarator flux-pumping state is likely to require an external or internal current source to counterbalance the dynamo, since the net toroidal current in a quasi-isodynamic device is negligibly small.
- Equilibrium $\mathbf{E}\times\mathbf{B}$ flow shear suppresses high-$n$ modes and can allow the plasma to be maintained at experimentally relevant heating power, but it does not automatically recover the experimental $(1,2)$ mode structure.
- The sustained $(1,2)$ mode observed in W7-AS was not reproduced; the mode is transient and the outcome depends on initialization and on whether the background profiles are maintained.
- Partial reconnection from overlapping interchange instabilities is a plausible core-crash mechanism for Mercier-unstable stellarators, analogous to the multiple-interchange sawtooth model in tokamaks.
Reading between the lines
- Editorial inference: if a current source is the missing ingredient, then quasi-axisymmetric stellarators, with their substantial bootstrap current, are more natural candidates for a stellarator flux-pumping regime than quasi-isodynamic ones; the paper notes this connection but does not test it.
- Editorial inference: scanning the W7-AS reconstruction toward more peaked pressure profiles or adding a co-injected current source is the most direct test of whether a sustained $(1,2)$ mode emerges; the paper itself notes that peaked profiles strengthen the low-$n$ signature.
- Editorial inference: the paper's dichotomy implies that a Mercier-unstable stellarator with many overlapping unstable helicities will tend to crash, while a configuration with a single marginally unstable coupled mode should saturate; this could be checked by a linear scan over rotational-transform and pressure profiles.
- Editorial inference: if no current source is available, the tokamak flux-pumping picture transfers to stellarators only in modified form, with Pfirsch-Schlüter or bootstrap currents playing the counterbalancing role; whether those currents suffice remains open.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper studies nonlinear evolution of low-n Mercier-unstable stellarator configurations using the JOREK code, with the aim of determining whether benign nonlinear saturation and flux-pumping-like states can arise in stellarators as they do for quasi-interchange modes in tokamaks. Two cases are considered: a low-iota, high-mirror W7-X-like configuration, where a (2,3) interchange mode is found to produce a mean dynamo term but then undergo partial reconnection and a core temperature crash; and a W7-AS intermediate-beta equilibrium reconstructed from experiment, where low-n MHD activity is reproduced only transiently and a sustained (1,2) mode as seen in the experiment is not obtained. The authors argue that the missing ingredients for flux pumping in stellarators are a current source and a single marginal instability, and they discuss several modelling uncertainties, most prominently the assumed linear pressure profile in the W7-AS equilibrium.
Significance. If the results are robust, the paper makes a valuable contribution by showing that Mercier-unstable stellarators do not automatically settle into benign flux-pumping-like states, and by identifying concrete missing ingredients (current source, marginality) for such states. The study is among the first to compare stellarator interchange dynamics with tokamak flux pumping using a common nonlinear MHD framework with experimentally motivated parameters. Strengths include the explicit comparison of the linear (2,3) mode structure between JOREK and CASTOR3D, the use of experimental Spitzer resistivity and heating powers for W7-AS, and the candid, well-documented discussion of modelling limitations. The central negative result for W7-AS, however, rests on an equilibrium reconstruction with an acknowledged uncertain pressure profile and a hand-modified radial electric field, so the significance hinges on the sensitivity of the conclusions to these inputs.
major comments (4)
- [Section 3.1 and Appendix C] The W7-AS equilibrium is constructed with the assumed pressure profile p(s)=p0(1-s), which the authors themselves state in Section 4 is 'likely incorrect given observations of peaked profiles in experimental diagnostics of similar discharges'. Since the central claim that no sustained (1,2) mode appears in simulations is based on this equilibrium, and since Section 3.2 reports that more peaked pressure profiles make low-n MHD signatures more prominent, the possibility that the experimental profile is peaked directly undermines the paper's main experimental counterexample. The authors should quantify this risk, for example by performing linear stability scans with CASTOR3D (as they themselves suggest is appropriate) or by running a nonlinear case with a more peaked initial profile, before concluding that the (1,2) mode cannot saturate.
- [Section 3.1, Figure 7] The radial electric field used in the W7-AS simulations is modified by hand from the neoclassical calculation to enforce subsonic poloidal flow and zero boundary electric field, an inconsistency the authors acknowledge. This input directly controls which mode families are stabilised: the paper reports that without the modified E×B flow the high-n branch dominates, and with it the (5,10) mode dominates. Because the result is so sensitive to this profile, the paper should demonstrate how the nonlinear outcome changes under plausible variations of the Er profile (e.g., amplitude, radial transition location, boundary value). Without such a sensitivity scan, the claim that E×B flow shear is a necessary ingredient for matching the experiment remains unsupported.
- [Section 2.1 and 2.2] The W7-X-like case is initialised by freezing the Nf=0 and Nf=1 mode families for t<0.85 ms so that the low-n (2,3) mode can lead the dynamics. This is an artificial intervention that prevents the high-n branch from naturally competing during the linear phase, and the later observation of partial reconnection and crash may depend on this scheduling. The paper states that this is done to investigate the case where low-n modes lead, but it should be made explicit that the conclusion 'the MHD dynamo cannot be followed over a resistive timescale' (Section 4) applies only to this specific initialization protocol. A test relaxing the freeze time, or a demonstration that the crash is robust to the freeze interval, is needed to support the more general statement.
- [Section 3.2, Figure 9] The nonlinear dynamics in the W7-AS case are highly sensitive to the mode-family initialization schedule: with Nf=0 evolved longer the (5,10) mode dominates and causes a crash, while allowing Nf=1 to grow early leads to a dominant (1,2) structure at t=3 ms (bottom-right panel of Figure 9). Given this, the statement in Section 4 that 'a coherent sustained (1,2) mode like the one observed in the experiment has not been found in any of the simulations' is not fully transparent. The authors should clarify whether the t=3 ms (1,2) structure persists or subsequently breaks up, and should provide the time trace beyond 3 ms. If the mode is only transient, that should be stated explicitly with evidence; if it persists, the central claim needs revision.
minor comments (4)
- [Acknowledgements] The declaration reads 'The authors report not conflict of interest' and should be 'no conflict of interest'.
- [Section 1] The notation s = sqrt(psi_t) is introduced in the text but the definition of psi_t itself is not given; a one-line definition of the normalised toroidal flux would help readers.
- [Appendix B, Equation B5] The parallel momentum equation contains a time-derivative term involving partial B^2/partial t that is not discussed; a brief comment on why this term is retained in the reduced MHD ordering would improve readability.
- [Figure 3] The colour scale for the iota value in the Poincare plots is not defined in the caption; adding a colourbar or describing the range of colours would make the claimed local iota modification visible to the reader.
Circularity Check
No significant circularity; central simulation results are externally benchmarked, and acknowledged profile assumptions are modeling limitations rather than circular inputs.
full rationale
The paper is a nonlinear MHD simulation study. Its two central results — the dynamo followed by partial reconnection in the W7-X-like case, and the absence of a sustained (1,2) mode in the W7-AS simulations — are outputs of JOREK runs whose inputs are the VMEC/GVEC equilibrium, Spitzer resistivity, DKES/Neotransp neoclassical radial electric field, and experimental heating and diffusive parameters. These inputs are not fitted to the simulated outputs, so no fitted parameter is renamed as a prediction. The W7-X-like run intentionally isolates the Nf=2 mode family so that low-n dynamics can lead; this conditioning is explicitly disclosed and makes the conclusions scenario-specific rather than tautological. The W7-AS comparison rests on an assumed linear pressure profile and a hand-modified Er profile; the authors explicitly acknowledge this, writing that the linear pressure assumption 'is likely incorrect' and that the Er modification 'introduces an inconsistency' between the neoclassical prediction and the enforced field. These are external reconstruction uncertainties, not circular reductions. Citations to prior work by the same group (Ramasamy et al. 2024, Zhang et al. 2025, Nührenberg 1996) provide a target equilibrium, motivation, and an AUG flux-pumping benchmark, but the present claims are independently checked against CASTOR3D linear stability calculations and against W7-AS experimental observations. No uniqueness theorem is invoked to forbid alternatives, no ansatz is smuggled in solely via self-citation, and no derivation step reduces to its own input by definition. The paper is self-contained against external benchmarks and discloses its modeling limitations, so the appropriate finding is no significant circularity.
Assumptions & free parameters
free parameters (8)
- Perpendicular viscosity mu_perp =
1.55e-7 kg m-1 s-1 (W7-X-like), 6.46e-9 (W7-AS)
- Numerical dissipation eta_num and mu_num =
1.93e-14 Ohm m3 and 1.55e-13 kg m s-1 (W7-X-like); 3.49e-13 and 6.46e-15 (W7-AS)
- Anomalous heat and particle diffusivities (kappa_perp, D_perp) =
kappa_perp=0.231 m2/s, D_perp=0.154 m2/s (W7-X-like); kappa_perp=0.924, D_perp=0.231 (W7-AS)
- Core-localized heat source profile =
Sum of two Gaussians with variances 0.125 and 0.33; power up to 3.2 MW (W7-AS) or 20 MW (W7-X-like)
- Modified E×B flow profile =
Not specified as formula; Er adjusted to keep flow subsonic and zero at boundary
- Mode-family initialization schedule =
Nf=2 evolved alone until t=0.85 ms (W7-X-like); Nf=1 grown early in some W7-AS runs
- Toroidal harmonic truncation ntor =
30 in most runs, 50 in one check
- Initial pressure profile p(s)=p0(1-s) =
Linear profile for both cases; W7-AS p0 corresponds to 8 kPa core pressure
assumptions (6)
- domain assumption Single-fluid viscoresistive reduced MHD as implemented in JOREK captures the nonlinear evolution of low-n interchange modes in stellarators.
- domain assumption The reconstructed VMEC/GVEC equilibria, including the W7-AS linear pressure profile and 8 kPa core pressure, approximate the experimental discharges.
- ad hoc to paper The modified subsonic E×B flow profile, rather than the raw neoclassical Er, is representative of the experimental background flow.
- domain assumption The vacuum magnetic field direction approximates the total magnetic field when projecting the dynamo electric field.
- domain assumption Classical Spitzer resistivity with Zeff=1 is appropriate for the W7-AS plasma.
- standard math The linear MHD stability results from CASTOR3D and JOREK agree and identify the relevant ideal interchange mode.
Cite this review
Pith. "Pith review of A comparison of low-n Mercier unstable Wendelstein stellarators and quasi-interchange modes in tokamaks." pith.science (2026). https://pith.science/paper/XN6JERWO
@misc{pith2026250503987,
author = {Pith},
title = {Pith review of: A comparison of low-n Mercier unstable Wendelstein stellarators and quasi-interchange modes in tokamaks},
year = {2026},
howpublished = {\url{https://pith.science/paper/XN6JERWO}},
note = {Machine review of arXiv:2505.03987}
}
abstract
Mercier's criterion is typically enforced as a hard operational limit in stellarator design. At the same time, past experimental and numerical studies have shown that this limit may often be surpassed, though the exact mechanism behind this nonlinear stability is not well understood. This work aims to contribute to our current understanding by comparing the nonlinear evolution of Mercier unstable Wendelstein stellarators to that of nonlinearly stable quasi-interchange modes in tokamaks. A high mirror, very low $\iota$, W7-X-like configuration is first simulated. A second case is then considered using experimental reconstructions of intermediate $\beta$ W7-AS discharges, where saturated low-n modes were observed experimentally, with sustained MHD signatures over tens of milliseconds. The possible reasons for the discrepancies between experiment and simulation, and the observation of partial reconnection in contrast to flux pumping are discussed, in view of reproducing and designing for operation of stellarators beyond the Mercier stability limit.
Figures
Figures from the paper (9 more)
Reference graph
Works this paper leans on
-
[1]
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-
[2]
write newline
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-
[3]
Plasma Physics and Controlled Fusion 40 (6), 967
Baldzuhn, J , Kick, M , Maassberg, H & the W7-AS Team 1998 Measurement and calculation of the radial electric field in the stellarator W7-AS . Plasma Physics and Controlled Fusion 40 (6), 967
work page 1998
-
[4]
Physics of Plasmas 7 (6), 2439--2448
Betti, R & Freidberg, JP 2000 Radial discontinuities in tokamak magnetohydrodynamic equilibria with poloidal flow . Physics of Plasmas 7 (6), 2439--2448
work page 2000
-
[5]
Nuclear Fusion 64 (12), 124005
Boyes, W , Turco, F , Hanson, J , Navratil, GA , Turnbull, A , Hyatt, A , Luce, T , Meyer, W , Nelson, AO , Odstrcil, T & others 2024 Novel intrinsic helical cores and MHD dynamo flux pumping evidence in DIII-D . Nuclear Fusion 64 (12), 124005
work page 2024
-
[6]
Physical review letters 122 (15), 155003
Brunetti, D , Graves, JP , Lazzaro, E , Mariani, A , Nowak, S , Cooper, Wilfred Anthony & Wahlberg, Christer 2019 Excitation mechanism of low-n edge harmonic oscillations in edge localized mode-free, high performance, tokamak plasmas . Physical review letters 122 (15), 155003
work page 2019
-
[7]
u tterich, T , Stober, J , G \
Burckhart, A , Bock, A , Fischer, R , P \"u tterich, T , Stober, J , G \"u nter, S , Gude, A , Hobirk, J , H \"o lzl, M , Igochine, V & others 2023 Experimental evidence of magnetic flux pumping in ASDEX upgrade . Nuclear Fusion 63 (12), 126056
work page 2023
-
[8]
Plasma Physics and Controlled Fusion 64 (5), 054011
Cathey, A , Hoelzl, M , Harrer, Georg , Dunne, MG , Huijsmans, GTA , Lackner, K , Pamela, SJP , Wolfrum, Elisabeth , G \"u nter, S , team, JOREK & others 2022 MHD simulations of small ELMs at low triangularity in ASDEX Upgrade . Plasma Physics and Controlled Fusion 64 (5), 054011
work page 2022
Show all 53 references
-
[9]
Nuclear Fusion 56 (7), 076011
Chen, Xi , Burrell, Keith H , Ferraro, Nathaniel M , Osborne, Thomas H , Austin, Max E , Garofalo, Andrea M , Groebner, Richard J , Kramer, Gerrit J , Luhmann, NC , McKee, George R & others 2016 Rotational shear effects on edge harmonic oscillations in DIII-D quiescent H-mode ...
2016
-
[10]
Nuclear Fusion 55 (11), 113014
De Aguilera, Adriana M , Castej \'o n, Francisco , Ascas \' bar, Enrique , Blanco, Emilio , De la Cal, Eduardo , Hidalgo, Carlos , Liu, Bing , L \'o pez-Fraguas, Antonio , Medina, Francisco , Ochando, Mar \' a Antonia & others 2015 Magnetic well scan and confinement in the TJ-...
2015
-
[11]
Physics of Plasmas 27 (2), 022502
Feng, Zhichen , Gates, David A , Lazerson, Samuel A , Landreman, Matt , Pomphrey, Neil & Fu, GuoYong 2020 Optimization of quasi-axisymmetric stellarators with varied elongation . Physics of Plasmas 27 (2), 022502
2020
-
[12]
In 30th European Physical Society Conference on Plasma Physics and Controlled Fusion\/
Geiger, J , Marushchenko, NB , Maassberg, H , Dinklage, A , Werner, A , Team, W7-AS & others 2003 Analysis of high- equilibria with toroidal net-current densities for W7-AS . In 30th European Physical Society Conference on Plasma Physics and Controlled Fusion\/ . European Phys...
2003
-
[13]
PRX Energy 3 (2), 023010
Goodman, Alan G , Xanthopoulos, Pavlos , Plunk, Gabriel G , Smith, H kan , N \"u hrenberg, Carolin , Beidler, Craig D , Henneberg, Sophia A , Roberg-Clark, Gareth , Drevlak, Michael & Helander, Per 2024 Quasi-isodynamic stellarators with low turbulence as fusion reactor candid...
2024
-
[14]
In 25th International Conference on Numerical Simulation of Plasmas (ICNSP 2017)\/
Hindenlang, Florian , Hoelzl, Matthias & Sonnendr \"u cker, Eric 2017 A Parallel 3D DG Framework for Resistive MHD Simulations in Tokamak and Stellarator Geometries . In 25th International Conference on Numerical Simulation of Plasmas (ICNSP 2017)\/
2017
-
[15]
, van Rij, W
Hirshman, Steven P. , van Rij, W. I. & Merkel, P. 1986 Three-dimensional free boundary calculations using a spectral G reens's function method . Comput. Phys. Commun. 43 (1), 143
1986
-
[16]
Nuclear Fusion 61 (6), 065001
Hoelzl, Matthias , Huijsmans, GTA , Pamela, SJP , Becoulet, Marina , Nardon, Eric , Artola, Francisco Javier , Nkonga, Boniface , Atanasiu, CV , Bandaru, Vinodh , Bhole, Ashish & others 2021 The JOREK non-linear extended MHD code and applications to large-scale instabilities a...
2021
-
[17]
Plasma Physics and Controlled Fusion 51 (12), 124012
Huysmans, GTA , Pamela, Stanislas , Van Der Plas, Emiel & Ramet, Pierre 2009 Non-linear MHD simulations of edge localized modes (ELMs) . Plasma Physics and Controlled Fusion 51 (12), 124012
2009
-
[18]
Plasma physics and controlled fusion 37 (11), 1287
Itoh, K , Itoh, S-I & Fukuyama, A 1995 A sawtooth model based on the transport catastrophe . Plasma physics and controlled fusion 37 (11), 1287
1995
-
[19]
Physics of Plasmas 27 (3)
Jardin, Stephen C , Krebs, I & Ferraro, N 2020 A new explanation of the sawtooth phenomena in tokamaks . Physics of Plasmas 27 (3)
2020
-
[20]
Physics of Plasmas 24 (10)
Krebs, I , Jardin, SC , G \"u nter, S , Lackner, K , Hoelzl, M , Strumberger, E & Ferraro, N 2017 Magnetic flux pumping in 3D nonlinear magnetohydrodynamic simulations . Physics of Plasmas 24 (10)
2017
-
[21]
Journal of Plasma Physics 88 (6), 905880616
Landreman, Matt 2022 Mapping the space of quasisymmetric stellarators using optimized near-axis expansion . Journal of Plasma Physics 88 (6), 905880616
2022
-
[22]
Physics of Plasmas 31 (3)
Liu, Dingyun , Fox, William , Bose, Sayak , Ji, Hantao , Jardin, Stephen & Ferraro, Nathaniel 2024 On discriminating tokamak sawtooth crash models via localized density and temperature measurements . Physics of Plasmas 31 (3)
2024
-
[23]
arXiv preprint arXiv:2402.00458
McGibbon, Bridget 2024 Simulations of poloidal flow stabilization of ballooning modes in a classical l= 2 stellarator using JOREK . arXiv preprint arXiv:2402.00458
2024 arXiv
-
[24]
Nuclear Fusion 4 (3), 213
Mercier, Claude 1964 Equilibrium and stability of a toroidal magnetohydrodynamic system in the neighbourhood of a magnetic axis . Nuclear Fusion 4 (3), 213
1964
-
[25]
o nies, Axel , N \
Mishchenko, Alexey , Borchardt, Matthias , Hatzky, Roman , Kleiber, Ralf , K \"o nies, Axel , N \"u hrenberg, Carolin , Xanthopoulos, Pavlos , Roberg-Clark, Gareth & Plunk, Gabriel G 2023 Global gyrokinetic simulations of electromagnetic turbulence in stellarator plasmas . Jou...
2023
-
[26]
PhD thesis, Technische Universit\"at M\"unchen
Nikulsin, Nikita 2021 Models and methods for nonlinear magnetohydrodynamic simulations of stellarators . PhD thesis, Technische Universit\"at M\"unchen
2021
-
[27]
Physics of Plasmas 3 (6), 2401--2410
N \"u hrenberg, Carolin 1996 Global ideal magnetohydrodynamic stability analysis for the configurational space of Wendelstein 7-X . Physics of Plasmas 3 (6), 2401--2410
1996
-
[28]
Contributions to Plasma Physics 50 (6-7), 552--557
Ohdachi, S , Sakamoto, R , Miyazawa, J , Morisaki, T , Masuzaki, S , Yamada, H , Watanabe, KY , Jacobo, VR , Nakajima, N , Watanabe, F & others 2010 Density collapse events observed in the large helical device . Contributions to Plasma Physics 50 (6-7), 552--557
2010
-
[29]
Nuclear Fusion 57 (6), 066042
Ohdachi, S , Watanabe, KY , Tanaka, K , Suzuki, Y , Takemura, Y , Sakakibara, S , Du, XD , Bando, T , Narushima, Y , Sakamoto, R & others 2017 Observation of the ballooning mode that limits the operation space of the high-density super-dense-core plasma in the LHD . Nuclear Fu...
2017
-
[30]
Physical review letters 102 (4), 045005
Petty, CC , Austin, ME , Holcomb, CT , Jayakumar, RJ , La Haye, RJ , Luce, TC , Makowski, MA , Politzer, PA & Wade, MR 2009 Magnetic-flux pumping in high-performance, stationary plasmas with tearing modes . Physical review letters 102 (4), 045005
2009
-
[31]
Nuclear Fusion 57 (7), 076014
Piovesan, P , Bonfiglio, Daniele , Cianciosa, M , Luce, TC , Taylor, NZ , Terranova, D , Turco, F , Wilcox, RS , Wingen, A , Cappello, S & others 2017 Role of a continuous MHD dynamo in the formation of 3D equilibria in fusion plasmas . Nuclear Fusion 57 (7), 076014
2017
-
[32]
, Aleynikova, K
Ramasamy, R. , Aleynikova, K. , Nikulsin, N. , Hindenlang, F. , Holod, I. , Strumberger, E. , Hoelzl, M. & the JOREK team 2024 Nonlinear MHD modeling of soft limits in W7-AS . Nuclear Fusion 64 (8), 086030
2024
-
[33]
Journal of Plasma Physics 90 (3), 175900301
Roberg-Clark, GT , Xanthopoulos, P & Plunk, GG 2024 Reduction of electrostatic turbulence in a quasi-helically symmetric stellarator via critical gradient optimization . Journal of Plasma Physics 90 (3), 175900301
2024
-
[34]
Fusion Science and Technology 58 (1), 176--185
Sakakibara, S , Watanabe, KY , Ohdachi, S , Narushima, Y , Toi, K , Tanaka, K , Narihara, K , Ida, K , Tokuzawa, T , Kawahata, K & others 2010 Study of MHD Stability in LHD . Fusion Science and Technology 58 (1), 176--185
2010
-
[35]
Plasma physics and controlled fusion 44 (5A), A217
Sakakibara, S , Yamada, H , Watanabe, KY , Narushima, Y , Toi, K , Ohdachi, S , Yamamoto, S , Narihara, K , Tanaka, K , Komori, A & others 2002 Effect of MHD activities on pressure profile in high- plasmas of LHD . Plasma physics and controlled fusion 44 (5A), A217
2002
-
[36]
Nuclear Fusion 61 (11), 116012
Sato, M & Todo, Y 2021 Kinetic thermal ion effects on maintaining high beta plasmas above the Mercier criterion in the Large Helical Device . Nuclear Fusion 61 (11), 116012
2021
-
[37]
Physics of Fluids B: Plasma Physics 5 (9), 3195--3206
Schwab, Carolin 1993 Ideal magnetohydrodynamics: Global mode analysis of three-dimensional plasma configurations . Physics of Fluids B: Plasma Physics 5 (9), 3195--3206
1993
-
[38]
Nuclear fusion 44 (9), 1008
Strauss, HR , Sugiyama, LE , Fu, GY , Park, W & Breslau, J 2004 Simulation of two fluid and energetic particle effects in stellarators . Nuclear fusion 44 (9), 1008
2004
-
[39]
& Günter, S
Strumberger, E. & Günter, S. 2017 CASTOR3D: linear stability studies for 2D and 3D tokamak equilibria . Nuclear Fusion 57 (1), 016032
2017
-
[40]
Physics of Fluids B: Plasma Physics 1 (3), 563--569
Van Rij, WI & Hirshman, SP 1989 Variational bounds for transport coefficients in three-dimensional toroidal plasmas . Physics of Fluids B: Plasma Physics 1 (3), 563--569
1989
-
[41]
Frontiers in Physics 12 , 1422411
Varela, J , Spong, Donald , Garcia, Luis , Ghai, Yashika , Ortiz, Juan & project collaborators, FAR3d 2024 Stability optimization of energetic particle driven modes in nuclear fusion devices: the FAR3d gyro-fluid code . Frontiers in Physics 12 , 1422411
2024
-
[42]
Plasma and Fusion Research 6 , 1403013--1403013
Varela, Jacobo , Watanabe, Kiyomasa Y , Nakajima, Noriyoshi , Ohdachi, Satoshi , Garcia, Luis & Mier, Jose A 2011 Ballooning modes instabilities in outward LHD configurations . Plasma and Fusion Research 6 , 1403013--1403013
2011
-
[43]
Plasma physics and controlled fusion 45 (12A), A285
Weller, A , Geiger, J , Werner, A , Zarnstorff, MC , N \"u hrenberg, C , Sallander, E , Baldzuhn, J , Brakel, R , Burhenn, R , Dinklage, A & others 2003 Experiments close to the beta-limit in w7-as . Plasma physics and controlled fusion 45 (12A), A285
2003
-
[44]
In 19^ th IAEA fusion energy conference, Lyon (France), 14-19 Oct 2002\/
Weller, A , Geiger, J & Zarnstorff, M 2002 Investigation of the -limit in the W7-AS stellarator. In 19^ th IAEA fusion energy conference, Lyon (France), 14-19 Oct 2002\/
2002
-
[45]
Fusion science and technology 50 (2), 158--170
Weller, Arthur , Sakakibara, S , Watanabe, KY , Toi, K , Geiger, J , Zarnstorff, MC , Hudson, SR , Reiman, A , Werner, A , N \"u hrenberg, C & others 2006 Significance of MHD effects in stellarator confinement . Fusion science and technology 50 (2), 158--170
2006
-
[46]
Plasma physics and controlled fusion 28 (1A), 243
Wesson, John A 1986 Sawtooth oscillations . Plasma physics and controlled fusion 28 (1A), 243
1986
-
[47]
Physics of Plasmas 31 (8)
Wright, AM & Ferraro, NM 2024 a\/ Investigating nonlinear magnetohydrodynamics in an optimized, reactor-scale quasi-axisymmetric stellarator . Physics of Plasmas 31 (8)
2024
-
[48]
Physics of Plasmas 31 (10)
Wright, AM & Ferraro, NM 2024 b\/ MHD-induced beta limits in the Large Helical Device . Physics of Plasmas 31 (10)
2024
-
[49]
Nuclear Fusion 64 (8), 086053
Yu, Q , G \"u nter, S & Lackner, K 2024 Numerical modelling of sawteeth and sawtooth-free regime . Nuclear Fusion 64 (8), 086053
2024
-
[50]
In 20^ th IAEA fusion energy conference 2004, Villamoura (Portugal), 1-6 Nov 2004\/
Zarnstorff, MC , Fredrickson, E , Hudson, S , Reiman, A , Fu, G-Y , Ku, LP , Monticello, D , Weller, A , Geiger, J , Knauer, JP & others 2004 Equilibrium and stability of high- plasmas in Wendelstein 7-AS . In 20^ th IAEA fusion energy conference 2004, Villamoura (Portugal), 1...
2004
-
[51]
Nuclear Fusion
Zhang, Haowei , Hoelzl, Matthias , Krebs, Isabel , Burckhart, Andreas , Bock, Alexander , G \"u nter, Sibylle , Igochine, Valentin , Lackner, Karl , Ramasamy, Rohan & Zohm, Hartmut 2025 Quantitative magnetohydrodynamic modelling of flux pumping in ASDEX Upgrade . Nuclear Fusion
2025
-
[52]
Physical Review Letters 133 (13), 135102
Zhou, Yao , Aleynikova, K , Liu, Chang & Ferraro, NM 2024 Benign saturation of ideal ballooning instability in a high-performance stellarator . Physical Review Letters 133 (13), 135102
2024
-
[53]
John Wiley & Sons
Zohm, Hartmut 2014 Magnetohydrodynamic stability of tokamaks\/ . John Wiley & Sons
2014
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